Biomolecular Target-Specific Complement Inhibitors, Methods for Producing the Same, and Applications
A fusion protein combining CRIg with complement regulatory proteins and an enhancement domain addresses excessive complement activation, offering targeted inhibition and therapeutic benefits for autoimmune diseases.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-05-10
- Publication Date
- 2026-03-24
AI Technical Summary
Excessive activation of the complement system can lead to autoimmune diseases and other disorders by attacking the body's own tissues, highlighting the need for more effective complement inhibitors.
A fusion protein comprising a CRIg extracellular domain linked with complement regulatory proteins (FH, CD55, CD46, CD59, or CR1) and an enhancement domain such as IgG Fc or HSA, which enhances complement inhibitory effects and improves drug formation characteristics.
The fusion protein effectively targets and inhibits complement activation, providing therapeutic benefits for various diseases associated with abnormal complement activation, including autoimmune disorders.
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Abstract
Description
Technical Field
[0001] This application relates to the field of biopharmaceuticals, and more specifically, to the design, preparation, and clinical application of biopolymer target-specific complement inhibitors.
Background Art
[0002] The complement system is an important component of innate immunity and at the same time an important regulatory factor of acquired immunity, and also serves as a bridge between innate immunity and acquired immunity. The complement system is a very complex self-regulatory cascade consisting of more than 30 activating factors, inhibitory factors, and complement receptors. Its main physiological function is to remove invading pathogenic microorganisms and host cell debris and regulate the entire immune and inflammatory processes, and it is an important system for immune surveillance and self-stabilization (Ricklin et al., 2010).
[0003] Activation of the complement system generally has three pathways: the classical pathway by IgG and IgM antibodies, the lectin pathway by mannose on the bacterial surface, and the alternative pathway by various components of the pathogen cell wall / cytosol and complement C3b-like substances such as serotonin. Furthermore, C3 can be automatically activated by hydration.
[0004] And the activation of complement mainly exerts its physiological effects in three ways (Dunkelberger and Song, 2010). First, C3a, especially C5a, produced by complement components C3 and C5 respectively, binds to the receptors C3aR or C5aR1 and C5L2 expressed on immune cells, recruiting various immune cells to secrete inflammatory cytokines (TNF-α, IL-1, IL-6, etc.) and chemokines (MCP-1, MIP-2, KC, CINC, etc.) (Riedemann et al., 2003), thereby bringing about a locally strong inflammation-promoting effect at the complement activation site. That is, it brings about an inflammation-promoting effect.
[0005] Secondly, C3b, another product of C3 activation, and its further degradation product iC3b, are inserted into the surface of target cells that have been attacked by complement, "tagging" these foreign substances and binding to multiple receptors expressed on immune cells such as CR1 / CR2 / CR3 / CR4 / CRIg, ultimately enabling them to be phagocytosed or lysed by immune cells. These foreign components are then phagocytosed by immune cells, i.e., phagocytosis is mediated.
[0006] Thirdly, C5b, another product of C5 activation, is also inserted into the surface of target cells attacked by complement, binding to complement C6 and C7 to form a stable complex C5b-7, and further binding to C8 and C9, ultimately leading to a C9 merization and the formation of the C5b-9n complex, also known as the membrane attack complex (MAC). This complex can then ultimately form on the inner surface of the target cell. This creates a pore in the target cell membrane with an inner diameter of 5 nm, an outer diameter of 20 nm, and a height of 15 nm, altering the osmotic pressure inside and outside the cell and exerting a direct cell lysis effect (Tegla et al., 2011).
[0007] To avoid the physiological effects of complement activation on normal somatic cells, living organisms have evolved more than 10 types of complement regulatory proteins. These proteins are expressed on cell membranes or circulate in the bloodstream, suppressing complement activation at each stage. Examples include the complement inhibitory proteins CR1, CD46, CD55, and CD59 expressed on cell membranes, and C1-INH, C4BP, FH, Vitronectin, and S protein, which circulate freely in the blood. Somatic cells are able to avoid being killed by complement during complement activation thanks to these complement regulatory proteins.
[0008] The complement system, while normally a self-defensive immune mechanism, can become excessively activated due to certain abnormal conditions in the body, such as elevated levels of complement activators, decreased levels of complement regulatory proteins, or deficiencies. This can lead to the complement system attacking the body's own tissue cells, ultimately causing diseases such as paroxysmal nocturnal hemoglobinuria (PNH), hemoglobinuria (PNH), atypical hemolytic uremic syndrome (aHUS), generalized myasthenia gravis (gMG), neuromyelitis optica spectrum disorder (NMOSSD), age-related macular degeneration (AMD), autolytic anemia, autoimmune thrombocytopenia, aplastic anemia, systemic lupus erythematosus, ankylosing rheumatoid arthritis, ankylosing spondylitis, arteriosclerosis, Parkinson's disease, Alzheimer's disease (dementia), asthma, allergies, psoriasis, multiple sclerosis, and Crohn's disease (Ricklin and Lambris, 2007). Excessive complement activation is strongly associated with the development of autoimmune diseases, particularly in their early stages. Therefore, complement system inhibitors could intervene in the early stages of these diseases, suggesting significant clinical benefits and demand.
[0009] Based on the importance of the complement system in the pathogenesis of numerous autoimmune diseases and acute and chronic infections, nearly 50 complement inhibitors from almost 30 pharmaceutical companies are in various stages of development, indirectly indicating that the development of more optimal complement inhibitors is still needed. [Overview of the project]
[0010] The present invention provides a fusion protein comprising: (i) a CRIg extracellular domain; (ii) a complement regulatory domain, wherein the complement regulatory domain comprises a protein or functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1; and (iii) an enhancement domain, wherein the enhancement domain comprises a protein or functional fragment thereof selected from the group consisting of an IgG Fc domain and human serum albumin.
[0011] The inventors of this application unexpectedly discovered that CRIg, when linked to other complement regulatory proteins FH, CD55, CD46, CD59, or CR1, and further linked to an IgG Fc fragment or HSA, not only exhibits a more pronounced complement inhibitory effect but can also contribute to improving drug formation characteristics such as purification and pharmacokinetic (PK) / pharmacodynamic (PD) effects.
[0012] In some embodiments, according to the present invention, a CRIg that exerts its target effect by binding to the fragment C3b and / or iC3b, which are generated after the activation of complement component C3, and another component having a complement inhibitory effect, such as FH, CD55, CD46, CD59, or CR1 (all CDs except CD59 stably bind simultaneously to different positions on C3b and / or iC3b compared to a single CRIg, FH, CD55, or CR1, thereby more effectively inhibiting the action of C3b / iC3b), are further linked to an IgG Fc fragment or HSA to produce a fusion protein (e.g., by genetic engineering methods), thereby delivering the recombinantly bound complement regulatory protein to a local complement activation site, ultimately targeting and inhibiting complement activation. This type of agent can be used to treat or prevent various human diseases associated with abnormal complement activation.
[0013] On the other hand, the present invention provides a fusion protein comprising: (i) a CRIg extracellular domain; (ii) a complement regulatory domain, wherein the complement regulatory domain comprises a protein or functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1; and (iii) an enhancement domain, wherein the enhancement domain comprises a protein or functional fragment thereof selected from the group consisting of an IgG Fc domain and human serum albumin.
[0014] In some embodiments, the CRIg extracellular domain includes the amino acid sequence shown in SEQ ID NO: 6.
[0015] In some embodiments, the C-terminus of the CRIg extracellular domain is directly or indirectly connected to the N-terminus of the complement regulatory domain.
[0016] In some embodiments, the C-terminus of the complement control domain is directly or indirectly connected to the N-terminus of the enhancement domain.
[0017] In some embodiments, the N-terminus of the CRIg extracellular domain is directly or indirectly connected to the C-terminus of the complement regulatory domain.
[0018] In some embodiments, the C-terminus of the CRIg extracellular domain is directly or indirectly ligated to the N-terminus of the enhancement domain.
[0019] In some embodiments, the indirect connections are linked by linkers.
[0020] In some embodiments, the linker may include the amino acid sequence shown in any one of SEQ ID NOs: 44, 46, 48, and 50.
[0021] In some embodiments, the complement regulatory domain may include the amino acid sequence shown in any one of SEQ ID NOs: 8, 18, 20, 22, 62, and 64.
[0022] In some embodiments, the enhancing domain is human serum albumin.
[0023] In some embodiments, the human serum albumin comprises the amino acid sequence shown in SEQ ID NO: 12.
[0024] In some embodiments, the fusion protein has a single-chain structure.
[0025] In some embodiments, the fusion protein comprises, from the N-terminus to the C-terminus, the CRIg extracellular domain, the complement regulatory domain, and the enhancement domain.
[0026] In some embodiments, the fusion protein comprises, in order from the N-terminus to the C-terminus, the complement control domain, the CRIg extracellular domain, and the enhancing domain.
[0027] In some embodiments, the fusion protein comprises the amino acid sequence shown in SEQ ID NO: 14.
[0028] In some embodiments, the enhancing protein comprises an IgG Fc domain.
[0029] In some embodiments, the IgG Fc is a human IgG1 Fc and human IgG4 Fc and comprises a protein selected from the group consisting of.
[0030] In some embodiments, the IgG Fc domain may comprise the amino acid sequence shown in any one of SEQ ID NOs: 10, 30, 32, and 34. [[ID=2In some embodiments, the first complement control domain is identical to the second complement control domain.
[0035] In some embodiments, the first IgG Fc domain is identical to the second IgG Fc domain.
[0036] In some embodiments, the first IgG Fc domain and the second IgG Fc domain may contain the amino acid sequence shown in either SEQ ID NO: 10 or 30.
[0037] In some embodiments, the first polypeptide chain is identical to the second polypeptide chain.
[0038] In some embodiments, the first polypeptide chain and / or the second polypeptide chain may contain the amino acid sequence shown in any one of SEQ ID NOs: 14, 24, 26, 28, 58, 60, 66, and 68.
[0039] In some embodiments, the first complement control domain differs from the second complement control domain.
[0040] In some embodiments, each of the first complement regulatory domain and the second complement regulatory domain independently comprises a protein or functional fragment thereof selected from the group consisting of CD59 and CD55.
[0041] In some embodiments, each of the first complement regulatory domain and the second complement regulatory domain independently comprises a protein or functional fragment thereof selected from the group consisting of FH and CD55.
[0042] In some embodiments, each of the first complement regulatory domain and the second complement regulatory domain independently comprises a protein or functional fragment thereof selected from the group consisting of CD46 and CD59.
[0043] In some embodiments, the first IgG Fc domain is identical to the second IgG Fc domain.
[0044] In some embodiments, the first IgG Fc domain is different from the second IgG Fc domain.
[0045] In some embodiments, the first IgG Fc domain may include the amino acid sequence shown in either SEQ ID NOs. 32 or 34.
[0046] In some embodiments, the second IgG Fc domain may contain the amino acid sequence shown in either SEQ ID NOs: 32 or 34.
[0047] In some embodiments, the first polypeptide chain may include the amino acid sequence shown in any one of SEQ ID NOs: 36, 38, 40, and 42.
[0048] In some embodiments, the second polypeptide chain may include the amino acid sequence shown in any one of SEQ ID NOs: 36, 38, 40, and 42.
[0049] In some embodiments, the fusion protein is The first polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 38, and the second polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 40; or The first polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 36, and the second polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 42; The first polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 38, and the second polypeptide chain comprises the amino acid sequence shown in SEQ ID NO: 42.
[0050] On the other hand, the present application provides one or more isolated nucleic acid molecules encoding the fusion protein or a fragment thereof.
[0051] On the other hand, the present application provides a vector containing the nucleic acid molecule.
[0052] On the other hand, the present application provides cells containing the vector, or cells expressing the fusion protein.
[0053] On the other hand, the present invention may also provide a method for preparing the fusion protein, comprising the steps of synthesizing the fusion protein or a fragment thereof, and / or culturing the cells under conditions for expressing the fusion protein or a fragment thereof.
[0054] On the other hand, the present application relates to the fusion protein and optionally pharmaceutically acceptable Carrier The present invention provides a pharmaceutical composition containing the following:
[0055] On the other hand, the present invention provides the use of the fusion protein or the pharmaceutical composition in drug preparation, the drug being used to treat diseases related to targeted inhibition of complement activation.
[0056] In some embodiments, the disease includes autoimmune diseases.
[0057] In some embodiments, the disease includes autoimmune myasthenia gravis.
[0058] Those skilled in the art will readily infer other aspects and advantages of the Application from the following detailed description. The following detailed description shows and describes only exemplary embodiments of the Application. As those skilled in the art will recognize, the content of the Application is such that those skilled in the art can modify the specific embodiments disclosed without departing from the spirit and scope of the invention. Accordingly, the accompanying drawings and descriptions of the Application are illustrative and not limiting.
[0059] The specific features of the invention described herein are as stated in the claims. The features and advantages of the invention described herein can be better understood by referring to the exemplary embodiments and accompanying drawings described in detail herein. A general description of the accompanying drawings is as follows. [Brief explanation of the drawing]
[0060] [Figure 1] Figure 1 shows the schematic designs of (CRIg-FH-IgG4Fc)×2 and CRIg-FH-HSA. [Figure 2] Figure 2 shows the identification of the (CRIg-FH-IgG4Fc)×2 and CRIg-FH-HSA recombinant proteins. [Figure 3] Figure 3 shows the inhibitory effect of (CRIg-FH-IgG4Fc)×2 on the classical pathway of human serum complement. [Figure 4] Figure 4 shows the inhibitory effect of (CRIg-FH-IgG4Fc)×2 on the alternative pathway of human serum complement. [Figure 5] Figure 5 shows the inhibitory effect of CRIg-FH-HSA on the classical pathway of human serum complement. [Figure 6] Figure 6 shows the inhibitory effect of CRIg-FH-HSA on the alternative pathway of human serum complement. [Figure 7] Figure 7 shows the results of pharmacokinetic studies in rats with (CRIg-FH-IgG4Fc)×2. [Figure 8] Figure 8 shows the results of pharmacokinetic studies of CRIg-FH-HSA in rats. [Figure 9] Figure 9 shows the schematic design for (CRIg-FH-IgG4Fc)×2, (CRIg-CD55-IgG4Fc)×2, (CRIg-CD46-IgG4Fc)×2, and (CRIg-CD59-IgG4Fc)×2. [Figure 10]Figure 10 shows the identification of four recombinant proteins: (CRIg-FH-IgG4Fc)×2, (CRIg-CD55-IgG4Fc)×2, (CRIg-CD46-IgG4Fc)×2, and (CRIg-CD59-IgG4Fc)×2. [Figure 11] Figure 11 shows the inhibitory effect of (CRIg-CD55-IgG4Fc)×2 on the classical pathway of human serum complement. [Figure 12] Figure 12 shows the inhibitory effect of (CRIg-CD55-IgG4Fc)×2 on the alternative pathway of human serum complement. [Figure 13] Figure 13 shows the inhibitory effect of (CRIg-CD46-IgG4Fc)×2 on the classical pathway of human serum complement. [Figure 14] Figure 14 shows the inhibitory effect of (CRIg-CD46-IgG4Fc)×2 on the alternative pathway of human serum complement. [Figure 15] Figure 15 shows the inhibitory effect of (CRIg-CD59-IgG4Fc)×2 on the classical pathway of human serum complement. [Figure 16] Figure 16 shows the inhibitory effect of (CRIg-CD59-IgG4Fc)×2 on the alternative pathway of human serum complement. [Figure 17] Figure 17 shows the schematic designs of the three recombinant proteins (CRIg-CD55-IgG1 Fc), (CRIg-FH-IgG1 Fc), (CRIg-CD46-IgG1 Fc), (CRIg-CD59-IgG1 Fc), and (CRIg-CD55-IgG1 Fc) and (CRIg-CD59-IgG1 Fc). [Figure 18] Figure 18 shows the identification of three recombinant proteins: (CRIg-CD55-IgG1 Fc), (CRIg-FH-IgG1 Fc), (CRIg-CD46-IgG1 Fc), (CRIg-CD59-IgG1 Fc), and (CRIg-CD55-IgG1 Fc) and (CRIg-CD59-IgG1 Fc). [Figure 19]Figure 19 shows the inhibitory effect of (CRIg-CD55-IgG1 Fc) and (CRIg-FH-IgG1 Fc) on the classical pathway of human serum complement. [Figure 20] Figure 20 shows the inhibitory effect of (CRIg-CD55-IgG1 Fc) and (CRIg-FH-IgG1 Fc) on alternative pathways of human serum complement. [Figure 21] Figure 21 shows the inhibitory effect of (CRIg-CD46-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on the classical pathway of human serum complement. [Figure 22] Figure 22 shows the inhibitory effects of (CRIg-CD46-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on alternative pathways of human serum complement. [Figure 23] Figure 23 shows the inhibitory effect of (CRIg-CD55-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on the classical pathway of human serum complement. [Figure 24] Figure 24 shows the inhibitory effect of (CRIg-CD55-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on alternative pathways of human serum complement. [Figure 25] Figure 25 shows the changes in body weight of EAMG rats administered with (CRIg-CD59-IgG4Fc) × 2 drugs. [Figure 26] Figure 26 shows the changes in clinical scores in EAMG rats administered with (CRIg-CD59-IgG4Fc) × 2 drugs. [Figure 27] Figure 27 shows the changes in mortality in EAMG rats administered with (CRIg-CD59-IgG4Fc) × 2 drugs. [Figure 28] Figure 28 shows the results of pharmacokinetic studies of CRIg-FH in rats. [Figure 29]Figure 29 shows the schematic designs for five recombinant proteins: (CRIg-IgG4 Fc)x2, (FH-IgG4 Fc)x2, (FH-CRIg-IgG4Fc)x2, (CRIg-FH-IgG4Fc)x2, and (CRIg-L-FH-IgG4Fc)x2. [Figure 30] Figure 30 shows the identification of five recombinant proteins: (CRIg-IgG4 Fc)x2, (FH-IgG4 Fc)x2, (FH-CRIg-IgG4 Fc)x2, (CRIg-FH-IgG4 Fc)x2, and (CRIg-L-FH-IgG4 Fc)x2. [Figure 31] Figure 31 shows the inhibitory effects of five recombinant proteins (CRIg-IgG4 Fc)x2, (FH-IgG4 Fc)x2, (FH-CRIg-IgG4Fc)x2, (CRIg-FH-IgG4Fc)x2, and (CRIg-L-FH-IgG4Fc)x2 on alternative pathways for human serum complement. [Figure 32] Figure 32 shows a schematic design of (CRIg-CR1-IgG4Fc)×2. [Figure 33] Figure 33 shows the identification of the (CRIg-CR1-IgG4Fc)×2 recombinant protein. [Figure 34] Figure 34 shows the inhibitory effect of (CRIg-CR1-IgG4Fc)×2 on the classical pathway of human serum complement. [Figure 35] Figure 35 shows the inhibitory effect of (CRIg-CR1-IgG4Fc)×2 on the alternative pathway of human serum complement. [Modes for carrying out the invention]
[0061] The embodiments of the present invention will be described below using specific examples, but those familiar with this art will be able to easily understand other advantages and effects of the present invention as disclosed herein.
[0062] Term definition In this application, the term “complement regulatory domain” generally refers to a substance capable of inhibiting the activation of the complement system. Complement system activation generally involves three pathways: the classical pathway mediated by IgG and IgM antibodies, the lectin pathway mediated by mannose on the bacterial surface, and the alternative pathway mediated by various components of the pathogen cell wall / cytosol and complement C3b analogs such as serotonin. Furthermore, C3 can be automatically activated by hydration. The complement regulatory domain can be inhibited at different stages of activation. The complement regulatory domain described herein may be derived from complement regulatory proteins or functional fragments thereof, and includes, but is not limited to, complement inhibitors present in the blood circulation and complement membrane regulatory proteins on the cell membrane surface. For example, this includes C1-INH (C1 inhibitor, C1 inhibitory protein), C4BP (C4 binding protein), factor I (FI), factor H (FH), S protein, clusterin, CD35 (also called CR1), CD46 (also called MCP), CD55 (also called DAF), and / or CD59, as well as the full length or partial sequence of CRIg itself.
[0063] In this application, the term "CD55" generally refers to a complement regulatory protein that also functions as a complement decomposition promoter or DAF. CD55 recognizes C4b and C3b fragments generated during the activation of complement component C4 (classical or lectin pathway) or C3 (alternative pathway) and regulates the complement system. CD55 interacts with cell-associated C4b in the classical and lectin pathways, interfering with the conversion of C2 to C2b, thereby preventing the production of C4b2b C3 convertase. CD55 also interacts with C3b in the alternative pathway, interfering with the conversion of Bb by factor B, thereby preventing the production of C3bBc C3 convertase in the alternative pathway. The CD55 described herein may include the full-length CD55 protein or fragments thereof, as well as various variants thereof (e.g., mutants, isoforms). For example, the exemplary nucleic acid molecule encoding CD55 may include the nucleotide sequence shown in SEQ ID NO: 17, and the exemplary CD55 protein may include the protein sequence shown in SEQ ID NO: 18.
[0064] In this application, the term "CD59" generally refers to a complement regulatory protein, also known as a "membrane invasion complex (MAC) inhibitory protein" (MAC-IP), "membrane inhibitor of reactive lysis" (MIRL), human erythrocyte membrane MAC formation inhibitor (MACIF), or protectin, and is a protein belonging to the LY6 / uPAR / α-neurotoxin family. CD59 can bind to host cells via a glycophosphatidylinositol (GPI) anchor. When the C5b678 complex is deposited on host cells by complement activation, CD59 can inhibit the polymerization of C9 and the formation of the complement membrane invasion complex. The CD59 described herein may include the full-length CD59 protein or its fragments, as well as various variants thereof (e.g., mutants, isoforms). For example, the exemplary nucleic acid molecule encoding CD59 may include the nucleotide sequence shown in SEQ ID NO: 21, and the exemplary CD59 protein may include the protein sequence shown in SEQ ID NO: 22.
[0065] In this application, the term "CD46" generally refers to a complement regulatory protein, also known as a membrane cofactor protein (MCP). Generally, CD46 possesses cofactor activity and protects host cells from complement damage by inactivating (thermally decomposing) complement components C3b and C4b via serum factor I. The CD46 described herein may include the full-length CD46 protein or its fragments, as well as various variants thereof (e.g., mutants, isoforms). For example, the exemplary nucleic acid molecule encoding CD46 may include the nucleotide sequence shown in SEQ ID NO: 19, and the exemplary CD59 protein may include the protein sequence shown in SEQ ID NO: 20.
[0066] In this application, the term “factor H (FH)” generally refers to complement regulatory proteins that are members of the complement activation regulatory factor family. The primary function of FH is to regulate alternative pathways in the complement system to function against pathogens and other hazardous substances without damaging host tissues. The sequence of FH typically contains numerous highly conserved motifs called short consensus repeats (SCRs). Each SCR consists of approximately 60 amino acids and comprises two disulfide bonds, a highly substituted loop, and a short SCR linker of 3-8 residues. FH typically consists of 20 SCRs, and the functional properties of FH are usually localized to the SCRs. The FH described herein may include a full-length FH protein or a fragment thereof (e.g., one or more SCRs), as well as various variants thereof (e.g., mutants, isoforms). For example, the exemplary nucleic acid molecule encoding the FH may include the nucleotide sequence shown in SEQ ID NO: 3, and the exemplary FH protein may include the protein sequence shown in SEQ ID NO: 4. For example, the FH described herein may include an SCR1-5 domain, and the exemplary nucleic acid molecule encoding the FH SCR1-5 domain may include the nucleotide sequence shown in SEQ ID NO: 7, and the exemplary FH SCR1-5 domain may include the protein sequence shown in SEQ ID NO: 8. In some embodiments, the FH may include other SCR fragments.
[0067] In this application, the term "CR1" generally refers to the complement regulatory protein also known as the C3b / C4b receptor or CD35. CR1 has a total of 30 SCR or CCP sequences, of which CCP1-3 bind to C4b, and CCP8-11 and CCP15-18 bind to C3b, thereby exerting a complement inhibitory effect. The CR1 described herein may include CCP8-11 or CCP15-18, as well as various variants thereof (e.g., mutants, isoforms). For example, the CR1 described herein may include a CCP8-11 domain, and the exemplary nucleic acid molecule encoding the CR1 protein CCP8-11 domain may include the nucleotide sequence shown in SEQ ID NO: 61, and the exemplary CR1 protein CCP8-11 domain may include the protein sequence shown in SEQ ID NO: 62. For example, the CR1 described herein may contain the CCP15-18 domain, the exemplary nucleic acid molecule encoding the CR1 protein CCP15-18 domain may contain the nucleotide sequence shown in SEQ ID NO: 63, and the exemplary CR1 protein CCP15-18 domain may contain the protein sequence shown in SEQ ID NO: 64. In some embodiments, the CR1 may contain other CCP fragments. Since the domains encoding the CR1 protein CCP8-11 and CCP15-18 differ by only three amino acids and are functionally identical, the CR1 protein CCP8-11 domain is used as an example in this application.
[0068] In this application, the term "single-stranded structure" generally refers to a chain of amino acids linked by covalent bonds (e.g., peptide bonds). A single-stranded structure may be generated by the binding of polypeptide fragments, or it may be generated before the binding of nucleic acids encoding polypeptide fragments occurs. For example, multiple polypeptide chains of the same or different origins may form a single-stranded fusion protein.
[0069] In this application, the term “human serum albumin (HSA)” generally refers to the globular protein encoded by the human gene ALB, which is typically found in plasma. Natural HSA consists of a single polypeptide having three domains: domain I, domain II, and domain III. Each domain consists of two sub-regions, A and B, and can form a cylindrical structure with opposing grooves, thus the structure of HSA is relatively flexible. It is also hydrophilic. In this specification, this term may include naturally occurring (e.g., plasma-derived) HSA and artificially synthesized (e.g., synthesized by genetic engineering) HSA. This term encompasses full-length HSA or its functional fragments. An exemplary nucleic acid molecule encoding an HSA protein may include the nucleotide sequence shown in SEQ ID NO: 11, and an exemplary HSA protein may include the amino acid sequence shown in SEQ ID NO: 12.
[0070] In this application, the term "enhancing domain" generally means a polypeptide domain that enhances the complement inhibitory effect. The complement inhibitory effect may include increasing the intensity of complement inhibitory activity of a substance having complement inhibitory activity (e.g., a complement regulatory domain), extending the duration of complement inhibition of a substance having strong complement activity inhibition (e.g., a complement regulatory domain), shortening the degradation period of a substance having complement activity inhibition (e.g., a complement regulatory domain), and / or extending the half-life of the blood concentration of a substance having complement activity inhibition (e.g., a complement regulatory domain). The enhancing domain may include a domain consisting of HSA, IgG1, IgG2, IgG3, and / or IgG4 Fc. In this application, the enhancing domain and the complement regulatory domain may be located on the same polypeptide chain or on different polypeptide chains.
[0071] In this application, the term "IgG Fc domain" generally refers to an immunoglobulin Fc region or its domain, and may include an Fc domain consisting of IgG1, IgG2, IgG3 and / or IgG4.
[0072] In this application, the term "CRIg" generally refers to a complement membrane regulatory protein belonging to the immunoglobulin superfamily. CRIg specifically recognizes iC3b (inactivated C3b) and inhibits the activation of C3 convertase, thereby exerting an inhibitory effect in the early stages of the complement cascade reaction. The CRIg may include CRIg from different species, for example, human or mouse CRIg. In some embodiments, the CRIg may be derived from human CRIg. Human CRIg may include a long form of CRIg consisting of a V-terminal and a C2-terminal Ig domain. Human CRIg may also include a short form of CRI consisting of a V-terminal Ig domain. The exemplary nucleic acid sequence encoding CRIg may be as shown in Sequence ID No. 1, and the exemplary CRIg protein may include the amino acid sequence shown in Sequence ID No. 2. Generally, the functional region of CRIg is located in its extracellular domain. Furthermore, the term "CRIg extracellular domain" generally includes the CRIg extracellular functional region, and the exemplary nucleic acid sequence encoding the CRIg extracellular domain may be as shown in Sequence ID No. 5, and the exemplary extracellular domain of CRIg may include the amino acid sequence shown in Sequence ID No. 6.
[0073] In this application, the term “vector” generally means a nucleic acid molecule that can self-replicate within a suitable host cell and transfers an inserted nucleic acid molecule within and / or between host cells. The vector may include vectors primarily used for inserting DNA or RNA into cells, vectors primarily used for replicating DNA or RNA, and vectors primarily used for the transcription and / or translation of DNA or RNA. The vector also includes vectors having the various functions described above. The vector may also be a polynucleotide that is transcribed or translated into a polypeptide when introduced into a suitable host cell. Typically, by culturing a suitable host cell containing the vector, the vector can produce the desired expression product.
[0074] In this application, the term “cell” generally means individual cells, cell lines, or cell cultures that may, or have previously, contain a plasmid or vector comprising the nucleic acid molecules described herein, or that are capable of expressing the antigen-binding fragments described herein. The cells may consist of offspring of a single host cell. Due to spontaneous, accidental, or intentional mutations, the daughter cells may not necessarily be morphologically or genomically identical to the original parent cells, but they should be capable of expressing the antibodies or their antigen-binding fragments described herein. The cells can be obtained by transfecting cells in vitro with the vector described herein. The cells may be prokaryotic cells (e.g., Escherichia coli) or eukaryotic cells (e.g., yeast cells, e.g., COS cells, Chinese hamster ovary (CHO) cells, HeLa cells, HEK293 cells, COS-1 cells, NS0 cells, or myeloma cells). In some embodiments, the cells may be mammalian cells. For example, the mammalian cells may be CHO-K1 cells.
[0075] In this application, the term "recombinant cell" generally refers to a cell into which a recombinant expression vector has been introduced. The recombinant host cell includes not only specific cells but also their offspring.
[0076] In this application, "Pharmacologically acceptable" Carrier The term "pharmaceutical adjuvants, excipients, or stabilizers" generally refers to pharmaceutically acceptable adjuvants, excipients, or stabilizers that are nontoxic to cells or mammals exposed to them at the doses and concentrations used. Generally, physiologically acceptable adjuvants are also included. Carrier It is a pH buffer solution. Physiologically acceptable. CarrierExamples of such substances may include, but are not limited to, the following: buffering agents such as phosphates, citrates, and other organic acids; antioxidants such as ascorbic acid; proteins such as low molecular weight (less than approximately 10 residues) polypeptides, serum albumin, gelatin, and immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates including glucose, mannose, or dextrin; chelating agents such as EDTA; sugar alcohols such as mannitol and sorbitol; counterions that form salts such as sodium; and / or nonionic surfactants such as TWEEN®, polyethylene glycol (PEG), and PLURONICS®.
[0077] In this application, the term “diseases related to targeted inhibition of complement activation” generally refers to the inhibition of disorders resulting from excessive complement activation, which may be caused by abnormal complement activation, elevated levels and / or activity of complement activation products, or decreased levels and / or activity of complement regulatory proteins (e.g., CD55, CD59, and / or FH). For example, complement activation may become unregulated due to decreased expression levels of complement regulatory proteins, decreased replication and / or transcription levels of complement regulatory protein genes, or abnormalities in the translation process of complement regulatory proteins compared to a normal state.
[0078] Excessive activation of complement can lead to abnormal (e.g., excessive) inflammatory responses, opsonization, and / or cytolytic effects. In some embodiments, the body produces autoantibodies against normal autoantigens, and when these bind to the antigens, they activate the complement pathway, leading to decreased levels and / or activity of substances associated with complement inhibitory activation (e.g., complement regulatory proteins), resulting in immune damage to its own tissues, organs, and cells, ultimately leading to autoimmune diseases. In some embodiments, diseases associated with targeted inhibition of complement activation include autoimmune diseases. In some embodiments, diseases associated with targeted inhibition of complement activation may be caused by acute or chronic infections.
[0079] In some embodiments, the diseases associated with targeted inhibition of complement activation may be caused by gene mutations. Diseases associated with targeted inhibition of complement activation may be selected from the following group: paroxysmal nocturnal hemoglobinuria (PNH), hemoglobinuria (PNH), atypical hemolytic uremic syndrome (aHUS), generalized myasthenia gravis (gMG), neuromyelitis optica spectrum disorder (NMOSSD), age-related macular degeneration (AMD), autolytic anemia, autoimmune thrombocytopenia, aplastic anemia, systemic lupus erythematosus, ankylosing rheumatoid arthritis, ankylosing spondylitis, arteriosclerosis, Parkinson's disease, Alzheimer's disease (dementia), asthma, allergy, psoriasis, multiple sclerosis, and Crohn's disease. For example, the disease is autoimmune myasthenia gravis.
[0080] In this application, the term "autoimmune myasthenia gravis" generally refers to a chronic autoimmune disease in which nerve-muscle signaling is blocked, thereby affecting the strength of skeletal muscles. It develops when complement is excessively activated, and acetylcholine receptors and receptor-related proteins, which are proteins on the postsynaptic membrane of the neuromuscular junction, are attacked by the immune response. Symptoms of autoimmune myasthenia gravis gradually spread over time, starting from the muscles of the eyes and moving to the muscles of the face and neck, causing weakness, slurred speech, difficulty chewing and swallowing, and / or difficulty breathing, and gradually spreading from the head and neck to the whole body, eventually leading to generalized myasthenia gravis.
[0081] Fusion protein On the other hand, the present application provides a fusion protein which may include (i) a CRIg extracellular domain. The CRIg extracellular domain described herein may include the amino acid sequence shown in SEQ ID NO: 6. In some embodiments, the CRIg extracellular domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 6, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0082] In this application, the fusion protein may include (ii) a complement regulatory domain.
[0083] In some embodiments, the material may include a protein derived from FH or a functional fragment thereof, wherein the FH may include the amino acid sequence shown in SEQ ID NO: 4.
[0084] In some embodiments, the FH may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 4, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0085] In some embodiments, the complement regulatory domain may include one or more SCR domains of FH. For example, the complement regulatory domain may include the SCR1-5 domains of FH, and the SCR1-5 domains of FH may include the amino acid sequence shown in SEQ ID NO: 8.
[0086] In some embodiments, the FH may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in Sequence ID No. 8, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0087] In some embodiments, the complement regulatory domain may include a protein derived from CD55 or a functional fragment thereof, wherein CD55 may include the amino acid sequence shown in SEQ ID NO: 18.
[0088] In some embodiments, the CD55 may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 18, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0089] In some embodiments, the complement regulatory domain may include a protein derived from CD59 or a functional fragment thereof, wherein CD59 may include the amino acid sequence shown in SEQ ID NO: 22.
[0090] In some embodiments, CD59 may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 22, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0091] In some embodiments, the complement regulatory domain may include a protein derived from CD46 or a functional fragment thereof, wherein CD46 may include the amino acid sequence shown in SEQ ID NO: 20.
[0092] In some embodiments, CD46 may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 20, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0093] In some embodiments, the complement regulatory domain may include a protein derived from CR1 or a functional fragment thereof, and the CR1 may include the amino acid sequence shown in SEQ ID NO: 62.
[0094] In some embodiments, CR1 may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 62, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%. Alternatively, CR1 may include the amino acid sequence shown in SEQ ID NO: 64.
[0095] In some embodiments, CR1 may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 64, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0096] The complement regulatory domain described herein may include proteins or functional fragments thereof derived from a group selected from factors H(FH), CD55, CD46, CD59, and CR1.
[0097] In some embodiments, the complement regulatory domain may include the amino acid sequence described in any one of SEQ ID NOs: 8, 18, 20, 22, 62, and 64.
[0098] In some embodiments, the complement regulatory domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in any one of SEQ ID NOs: 8, 18, 20, 22, 62, and 64, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0099] The complement regulatory domain described herein may include proteins or functional fragments thereof derived from a group selected from factors H(FH), CD55, CD59, and CR1.
[0100] In some embodiments, the complement regulatory domain may include the amino acid sequence described in any one of SEQ ID NOs: 8, 18, 20, 22, 62, and 64.
[0101] In some embodiments, the complement regulatory domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in any one of SEQ ID NOs: 8, 18, 20, 22, 62, and 64, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0102] In this application, the fusion protein may include (iii) an enhancement domain.
[0103] In some embodiments, the enhancement domain may include an IgG Fc domain or a functional fragment thereof.
[0104] In some embodiments, the IgG Fc domain is IgG 4 Fc It may also be a domain, and the IgG 4 Fc The domain may contain the amino acid sequence shown in Sequence ID No. 10.
[0105] In some embodiments, the enhancement domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 10, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0106] In some embodiments, the IgG Fc domain is IgG 1 Fc It may also be a domain, and the IgG 1 Fc The domain may contain its variants. For example, the IgG Fc domain may be mutated to obtain a desired spatial structure, for example, to form a knob-hole structure to better form dimers. For example, the IgG 1 Fc This may include the amino acid sequence shown in any one of sequence numbers 30, 32, or 34.
[0107] In some embodiments, the enhancing domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in any one of SEQ ID NOs: 30, 32, and 34, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99% of the amino acid sequence shown in any one of SEQ ID NOs: 30, 32, and 34.
[0108] In this application, the enhancing domain may contain human serum albumin or a functional fragment thereof, and the human serum albumin may contain the amino acid sequence shown in SEQ ID NO: 12.
[0109] In some embodiments, the enhancement domain may include an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 12, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0110] In this application, the fusion protein may include (i) a CRIg extracellular domain, (ii) a complement regulatory domain, and (iii) an enhancement domain. In the fusion protein, the C-terminus of the CRIg extracellular domain may be directly or indirectly linked to the N-terminus of the complement regulatory domain, or the C-terminus of the complement regulatory domain may be directly or indirectly linked to the N-terminus of the enhancement domain. For example, the fusion protein may include, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, and the enhancement domain.
[0111] In this application, the indirect linkage may include linkage via a linker. For example, the linker may include a linking peptide.
[0112] In some embodiments, the C-terminus of the CRIg extracellular domain may be linked to the N-terminus of the complement regulatory domain by a linker, the linker may include the amino acid sequence shown in any one of SEQ ID NOs: 44, 46, 48, and 50.
[0113] In some embodiments, the nucleotide sequence encoding the linker may be one of the sequences shown in SEQ ID NOs: 43, 45, 47, and 49. For example, the linker may be (Gly4Ser)3.
[0114] In some embodiments, the C-terminus of the complement suppression domain may be linked to the N-terminus of the enhancement domain by a linker, the linker may include the amino acid sequence shown in any one of SEQ ID NOs: 44, 46, 48, and 50.
[0115] In some embodiments, the nucleotide sequence encoding the linker may be one of the sequences shown in SEQ ID NOs: 43, 45, 47, and 49. For example, the linker may be (Gly4Ser)3.
[0116] In this application, the fusion protein may include, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, the linker, the complement regulatory domain, and the enhancement domain.
[0117] In this application, the fusion protein may include, in order from the N-terminus to the C-terminus, the complement regulatory domain, the linker, the CRIg extracellular domain, and the enhancement domain.
[0118] In this application, the fusion protein may include, from the N-terminus to the C-terminus, the CRIg extracellular domain, the FH, and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc), in that order. For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 14 or 40.
[0119] In this application, the fusion protein may include, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, the linker, the FH, and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc). For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 60.
[0120] In this application, the fusion protein may include, from the N-terminus to the C-terminus, the CRIg extracellular domain and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc), in that order. For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 58.
[0121] In this application, the fusion protein may contain, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, the FH, and the HSA. For example, the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 16.
[0122] In this application, the fusion protein may include, from the N-terminus to the C-terminus, the CRIg extracellular domain, the CD59, and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc), in that order. For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 28 or 42.
[0123] In this application, the fusion protein may include, from the N-terminus to the C-terminus, the CRIg extracellular domain, the CD55, and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc), in that order. For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 24 or 38.
[0124] In this application, the fusion protein may include, from the N-terminus to the C-terminus, the CRIg extracellular domain, the CR1, and the IgG FC domain (e.g., IgG1 Fc or IgG4 Fc), in that order. For example, the fusion protein may include the amino acid sequence shown in SEQ ID NO: 66 or 68.
[0125] In this application, the fusion protein may have a single-chain structure.
[0126] In this application, the fusion protein may, from the N-terminus to the C-terminus, sequentially contain the CRIg extracellular domain, the FH SCR1-5, and the human serum albumin. For example, the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 16. For example, the fusion protein may contain an amino acid sequence homologous to at least 90% of the amino acid sequence shown in SEQ ID NO: 16, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0127] In this application, the fusion protein may be a first polypeptide chain or a second polypeptide chain.
[0128] In some embodiments, the first polypeptide chain may comprise the CRIg extracellular domain, the first complement regulatory domain, and the first IgG Fc domain. In some embodiments, the first complement regulatory domain may comprise a protein or functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1.
[0129] In some embodiments, the first complement regulatory domain may include a protein or a functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1.
[0130] In some embodiments, the first IgG Fc domain may contain a protein or a functional fragment thereof selected from the group consisting of IgG1 Fc and IgG4 Fc.
[0131] In some embodiments, the second polypeptide chain may include the CRIg extracellular domain, the second complement regulatory domain, and the second IgG Fc domain.
[0132] In some embodiments, the second complement regulatory domain may include a protein or a functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1.
[0133] In some embodiments, the second complement regulatory domain may include a protein or a functional fragment thereof selected from the group consisting of factor H(FH), CD55, CD46, CD59, and CR1.
[0134] In some embodiments, the second IgG Fc domain may contain a protein or a functional fragment thereof selected from the group consisting of IgG1 Fc and IgG4 Fc.
[0135] In some embodiments, the first polypeptide chain may contain an amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 26, 28, 38, 40, 42, 58, 60, 66, and 68. For example, the first polypeptide chain may contain an amino acid sequence homologous to at least 90% of the amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 26, 28, 38, 40, 42, 58, 60, 66, and 68, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0136] In some embodiments, the first polypeptide chain may contain an amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 28, 38, 40, 42, 58, 60, 66, and 68. For example, the first polypeptide chain may contain an amino acid sequence homologous to at least 90% of the amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 28, 38, 40, 42, 58, 60, 66, and 68, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0137] In some embodiments, the second polypeptide chain may contain an amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 26, 28, 38, 40, 42, 58, 60, 66, and 68. For example, the second polypeptide chain may contain an amino acid sequence homologous to at least 90% of the amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 26, 28, 38, 40, 42, 58, 60, 66, and 68, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0138] In some embodiments, the second polypeptide chain may contain an amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 28, 38, 40, 42, 58, 60, 66, and 68. For example, the second polypeptide chain may contain an amino acid sequence homologous to at least 90% of the amino acid sequence represented by any one of SEQ ID NOs: 14, 24, 28, 38, 40, 42, 58, 60, and 68, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%.
[0139] In this application, the fusion protein may include a first polypeptide chain and a second polypeptide chain, and the first IgG Fc domain of the first polypeptide chain and the second IgG Fc domain of the second polypeptide chain may interact to form a dimer.
[0140] In this application, the first complement regulatory domain of the first polypeptide chain of the fusion protein may be the same as the second complement regulatory domain of the second polypeptide chain. For example, the first and second complement regulatory domains may contain a protein or functional fragment thereof selected from the group consisting of factor H(FH), CD46, CD55, CD59, and CR1.
[0141] In some embodiments, the first IgG Fc domain of the first polypeptide chain of the fusion protein may be the same as the second IgG Fc domain of the second polypeptide chain. For example, the first IgG Fc domain and / or the second IgG Fc domain may contain the amino acid sequence shown in either SEQ ID NO: 10 or 30.
[0142] For example, the first IgG Fc domain and / or the second IgG Fc domain may contain an amino acid sequence homologous to at least 90% of the amino acid sequence shown in any one of SEQ ID NOs: 10 and 30, for example, an amino acid sequence homologous to at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%. For example, the fusion protein may include a first polypeptide chain and a second polypeptide chain, and the first polypeptide chain and the second polypeptide chain may be identical. For example, the first polypeptide chain and / or the second polypeptide chain may contain an amino acid sequence shown in any one of SEQ ID NOs: 14, 24, 26, 28, 58, and 60. For example, the first polypeptide chain and / or the second polypeptide chain may contain an amino acid sequence shown in any one of SEQ ID NOs: 14, 24, or 28. For example, the first polypeptide chain and / or the second polypeptide chain may contain amino acid sequences homologous to at least 90% of the amino acid sequences shown in any one of SEQ ID NOs: 14, 24, 26, 28, 58, and 60, for example, amino acid sequences homologous to at least 95%, at least 96%, at least 97%, at least 98%, and at least 99% of the amino acid sequences shown in any one of SEQ ID NOs: 14, 24, 26, 28, 58, and 60.
[0143] In this application, the first complement regulatory domain of the first polypeptide chain of the fusion protein may be different from the second complement regulatory domain of the second polypeptide chain. For example, each of the first and second complement regulatory domains independently contains a protein or functional fragment thereof selected from the group consisting of CD59 and CD55. For example, each of the first and second complement regulatory domains independently contains a protein or functional fragment thereof selected from the group consisting of FH and CD55. For example, each of the first and second complement regulatory domains independently contains a protein or functional fragment thereof selected from the group consisting of CD46 and CD59.
[0144] In some embodiments, the first IgG Fc domain of the first polypeptide chain of the fusion protein may be the same as the second IgG Fc domain of the second polypeptide chain.
[0145] For example, the first IgG Fc domain and / or the second IgG Fc domain may include the amino acid sequence shown in either SEQ ID NO: 10 or 30. In some embodiments, the first IgG Fc domain of the first polypeptide chain of the fusion protein may be different from the second IgG Fc domain of the second polypeptide chain.
[0146] For example, the first IgG Fc domain may contain the acid sequence shown in SEQ ID NO: 32, and the second IgG Fc domain may contain the amino acid sequence shown in SEQ ID NO: 34.
[0147] For example, the first polypeptide chain or the second polypeptide chain of the fusion protein may contain, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, CD46, and IgG1 Fc.
[0148] For example, the first polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 36.
[0149] For example, the first polypeptide chain or the second polypeptide chain of the fusion protein may contain, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, CD55, and IgG1 Fc.
[0150] For example, the first polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 38.
[0151] For example, the second polypeptide chain of the fusion protein may contain, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, FH, and IgG1 Fc.
[0152] For example, the second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 40.
[0153] For example, the second polypeptide chain of the fusion protein may contain, in order from the N-terminus to the C-terminus, the CRIg extracellular domain, CD59, and IgG1 Fc. The second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 42.
[0154] For example, the first polypeptide chain may contain the amino acid sequence shown in any one of SEQ ID NOs: 36, 38, 40, or 42.
[0155] For example, the first polypeptide chain may contain the amino acid sequence shown in any one of SEQ ID NOs: 38, 40, or 42.
[0156] For example, the second polypeptide chain may contain the amino acid sequence shown in any one of SEQ ID NOs: 36, 38, 40, or 42.
[0157] For example, the first polypeptide chain may contain the amino acid sequence shown in any one of SEQ ID NOs: 38, 40, or 42.
[0158] For example, the first polypeptide chain of the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 38, and the second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 42.
[0159] For example, the first polypeptide chain of the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 38, and the second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 40.
[0160] For example, the first polypeptide chain of the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 38, and the second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 42.
[0161] For example, the first polypeptide chain of the fusion protein may contain the amino acid sequence shown in SEQ ID NO: 36, and the second polypeptide chain may contain the amino acid sequence shown in SEQ ID NO: 42.
[0162] In this application, the first polypeptide chain, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., the factor H(FH), CD46, CD55, and CD59), and the enhancement domain (e.g., the IgG Fc domain and / or human serum albumin and / or the fusion protein) may include not only the respective amino acid sequences described above, but also variants of the respective amino acid sequences.
[0163] In this application, the variant of the amino acid sequence is 1) an amino acid sequence having at least 90% (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or at least 100%) sequence homology with the corresponding amino acid sequence; and / or 2) The amino acid sequence may include one or more amino acids (for example, 1-2, 1-3, 1-4, 1-5, 1-6, 1-7, 1-8, 1-9, 1-10, 1-11, 1-12 or more) obtained by substituting, deleting, or adding them in the corresponding amino acid sequence.
[0164] In this application, the term “homologousity” generally means sequence similarity or interchangeability between two or more polynucleotide sequences or between two or more polypeptide sequences. When using a computer program or software (e.g., Emboss Needle or BestFit) to determine sequence identity, similarity, or homology between different amino acid sequences, default parameter settings can be used. To optimize the scores for identity, similarity, and homology, an appropriate scoring matrix such as bloomum45 or bloomum80 can also be selected. In some embodiments, homologous polynucleotides can hybridize to a control polynucleotide sequence under stringency conditions and contain polynucleotides having at least 60%, at least 65%, at least 70%, at least 80%, at least 90%, at least 95%, at least 97%, at least 98%, at least 99%, or at least 100% sequence identity compared to the control polynucleotide sequence. Homologous polypeptides may be polypeptides that, when sequence comparison is performed under optimized conditions, have at least 80%, at least 85%, at least 90%, at least 95%, at least 97%, at least 98%, at least 99%, or at least 100% sequence identity with respect to the control polypeptide sequence.
[0165] Sequence comparison can be performed to determine sequence identity, and this can be done using various methods known to those skilled in the art, such as BLAST, BLAST-2, ALIGN, NEEDLE, or Megalign (DNASTAR) software. Those skilled in the art can determine appropriate parameters to be used for the comparison, including the algorithm necessary to achieve optimal comparison in the full-length sequences to be compared.
[0166] In this application, the amino acid substitution may be a conservative amino acid substitution or a non-conservative amino acid substitution. The substituted first polypeptide chain, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., factor H(FH), CD55 and CD59) and / or the enhancement domain (e.g., the IgG Fc domain and / or human serum albumin) still have the same or similar functional activity as the unsubstituted first polypeptide chain, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., factor H(FH), CD55 and CD59) and / or the enhancement domain (e.g., the IgG Fc domain and / or human serum albumin).
[0167] For example, the amino acid substitution may be a non-conservative substitution. The non-conservative substitution may include non-conservatively changing an amino acid residue in the target protein or polypeptide, for example, changing an amino acid residue having a certain side chain size or a certain property (e.g., hydrophilicity) to an amino acid residue having a different side chain size or a different property (e.g., hydrophobicity).
[0168] Furthermore, the amino acid substitution may be a conservative substitution. The non-conservative substitution may include conservatively altering an amino acid residue in the target protein or polypeptide, for example, changing an amino acid residue having a certain side chain size or a certain property (e.g., hydrophilicity) to an amino acid residue having the same or similar side chain size or the same or similar property (e.g., still hydrophilic). Such conservative substitutions usually do not significantly affect the structure or function of the resulting protein. In this application, the first polypeptide chain, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., the factor H(FH), CD46, CD55, CD59, and CR1) and / or the enhancement domain (e.g., the IgG Fc domain and / or amino acid sequence variants of human serum albumin) may include conservative amino acid substitutions that do not significantly alter the structure or function of the protein.
[0169] For example, mutual substitutions between amino acids within the following groups can be considered conservative substitutions in this application: the group of amino acids having nonpolar side chains: alanine, valine, leucine, isoleucine, proline, phenylalanine, tryptophan, and methionine.
[0170] Group of amino acids with uncharged polar side chains: glycine, serine, threonine, cysteine, tyrosine, asparagine, glutamine.
[0171] Amino acid group with negatively charged polar side chains: aspartic acid, glutamic acid. Positively charged basic amino acids: lysine, arginine, histidine. Amino acids containing a phenyl group: phenylalanine, tryptophan, tyrosine.
[0172] Nucleic acid molecules, vectors, and cells On the other hand, the present application also provides one or more isolated nucleic acid molecules. The one or more nucleic acid molecules may encode a fusion protein or a fragment thereof as described in the present application. For example, each of the one or more nucleic acid molecules may encode the complete fusion protein (e.g., the fusion protein is single-stranded), or a part of the fusion protein, e.g., the first polypeptide chain, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., the factor H(FH), CD46 CD55, CD59, and CR1), and / or the enhancement domain (e.g., the IgG Fc domain), and / or human serum albumin, or one or more of these.
[0173] In this application, the nucleic acid molecule may contain any one of the base sequences shown in SEQ ID NOs: 13, 15, 23, 25, 27, 35, 37, 39, 41, 57, 59, 65, and 67.
[0174] The nucleic acid molecules described herein may be isolated. For example, they may be produced or synthesized by (i) in vitro, e.g., polymerase chain reaction (PCR) amplification, (ii) clonal recombination, (iii) purification, e.g., by stepwise separation by enzymatic digestion and gel electrophoresis, or (iv) synthesis, e.g., chemical synthesis. In some embodiments, the isolated nucleic acid is a nucleic acid molecule prepared by recombinant DNA technology.
[0175] In this application, nucleic acids encoding fusion proteins or fragments thereof can be prepared by various methods known in the art, including, but not limited to, restriction fragment manipulation or overlap extension PCR using synthetic oligonucleotides. For further details, see Sambrook et al., Molecular Cloning, A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989; and Ausube et al., Current Protocols in Molecular Biology, Greene Publishing and Wiley-Interscience, New York, NY, 1993.
[0176] On the other hand, the present application provides one or more vectors comprising one or more of the nucleic acid molecules described herein. Each vector may comprise one or more of the nucleic acid molecules. The vector may also comprise other genes, such as marker genes, that select the vector under appropriate conditions in a suitable host cell. The vector may also comprise expression regulatory elements that enable the coding region to be correctly expressed in a suitable host. Such regulatory elements are well known to those skilled in the art and may comprise, for example, promoters, ribosome binding sites, enhancers, and other regulatory elements that regulate gene transcription or mRNA translation. In some embodiments, the expression regulatory sequence is a tunable element. The specific structure of the expression regulatory sequence may vary depending on the function of the species or cell type, but typically comprises a 5' untranscribed sequence and 5' and 3' untranslated sequences involved in transcription and translation initiation, such as TATA, capping sequences, or CAAT sequences. For example, the 5' untranscribed expression regulatory sequence may comprise a promoter region, and the promoter region may comprise a promoter sequence that functionally ligates to a nucleic acid for transcriptional regulation. Furthermore, the expression regulatory sequence may include an enhancer sequence or an upstream activator sequence. Suitable promoters in this application include, for example, promoters for SP6, T3, and T7 polymerases, the human U6RNA promoter, the CMV promoter, and its artificial xenopromoter (e.g., CMV), wherein a portion of the promoter may be fused with a portion of the promoter of another cellular protein (e.g., human GAPDH, glyceraldehyde 3-phosphate dehydrogenase) gene, and may or may not include an intron. One or more nucleic acid molecules described in this application can be operably linked to an expression regulatory element. The vector may consist of, for example, a plasmid, slime mold, virus, phage, or other vectors commonly used in, for example, genetic engineering. For example, the vector is an expression vector. On the other hand, this application provides a host cell, which may contain one or more nucleic acid molecules and / or one or more vectors described in this application. In some embodiments, each or any cell may contain one or more nucleic acid molecules or vectors described in this application.In some embodiments, each cell may contain multiple (e.g., two or more) or multiple types (e.g., two or more) nucleic acid molecules or vectors of the vectors of the present application. For example, the vectors described herein may be introduced into the host cells, eukaryotic cells such as plant, fungal, or yeast cells. The carriers described herein can be introduced into the host cells by methods known in the art, such as electroporation or transfection with lipofectamine.
[0177] Pharmaceutical composition On the other hand, the present application relates to the fusion protein and optionally pharmaceutically acceptable Carrier The present invention provides a pharmaceutical composition containing pharmaceutically acceptable Carrier This refers to substances that can typically be used in the preparation of pharmaceutical compositions or formulations, and are generally safe, non-toxic, and biologically and otherwise undesirable. Carrier It means something that is not used. Carrier Typically, a formulation suitable for administration to mammals such as humans is used. In the preparation of the composition, the active ingredient is usually Carrier It is mixed with, Carrier It is diluted or encapsulated by the carrier. When the carrier is used as a diluent, it may be solid, semi-solid, or liquid, and is a medium for the active ingredient of the antibody. Carrier Anything that functions as a medium is acceptable. Carrier It may contain buffers, antioxidants, preservatives, low molecular weight peptides, proteins, hydrophilic polymers, amino acids, sugars, chelating agents, counterions, metal complexes and / or nonionic surfactants.
[0178] In this application, the pharmaceutical composition may be formulated for oral administration, intravenous administration, intramuscular administration, in situ administration at the tumor site, inhalation, rectal administration, vaginal administration, transdermal administration, or administration via a subcutaneous reservoir. A solution or suspension for transdermal administration or administration via a subcutaneous reservoir may contain the following components: sterile diluents such as water for injection, physiological saline, non-volatile oil, polyethylene glycol, glycerol, propylene glycol, or other synthetic solvents; antimicrobial agents such as benzyl alcohol or methylparaben; antioxidants such as ascorbic acid or sodium bisulfite; chelating agents such as ethylenediaminetetraacetic acid (EDTA); buffering agents such as acetates, citrates, or phosphates; and tension-modulating substances such as sodium chloride or glucose. The pH can be adjusted with acids or bases such as hydrochloric acid or sodium hydroxide.
[0179] Methods and Uses On the other hand, the present application provides a method for preparing the fusion protein or a fragment thereof. The method may include the steps of synthesizing the fusion protein or a fragment thereof, and / or culturing the cells under conditions for expressing the fusion protein or a fragment thereof. This can be done, for example, by using methods known to those skilled in the art, such as using a suitable culture medium, a suitable temperature, and a suitable incubation time.
[0180] The present invention relates to a fusion protein or fragment thereof described herein, which may be formed by using genetic engineering techniques, for example, the first polypeptide linkage, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., the factor H(FH), CD46, CD55, CD59, and CR1) and / or the enhancement domain (e.g., the IgG Fc domain and / or human serum albumin), or the amino acid residues may be linked in order according to the protein sequence.
[0181] Furthermore, the present invention may use genetic engineering techniques to sequentially link bases according to the coding sequence of the fusion protein or fragment thereof described herein, for example, the coding sequence of the first polypeptide linkage, the second polypeptide chain, the CRIg extracellular domain, the complement regulatory domain (e.g., the factor H(FH), CD46, CD55, CD59, and CR1) and / or the enhancement domain (e.g., the IgG Fc domain and / or human serum albumin); or the nucleic acid sequence.
[0182] On the other hand, the present application provides the use of the fusion protein or the pharmaceutical composition in the preparation of a drug, the drug being used to treat diseases associated with targeted inhibition of complement activation. Diseases associated with targeted inhibition of complement activation may be selected from the group consisting of: paroxysmal nocturnal hemoglobinuria (PNH), hemoglobinuria (PNH), atypical hemolytic uremic syndrome (aHUS), generalized myasthenia gravis (gMG), neuromyelitis optica spectrum disorder (NMOSSD), age-related macular degeneration (AMD), autolytic anemia, autoimmune thrombocytopenia, aplastic anemia, systemic lupus erythematosus, ankylosing rheumatoid arthritis, ankylosing spondylitis, arteriosclerosis, Parkinson's disease, Alzheimer's disease (dementia), asthma, allergy, psoriasis, multiple sclerosis, and Crohn's disease. The drugs described herein can suppress complement activation and / or protect cells from complement attack. In some embodiments, the disease may include autoimmune diseases. For example, the disease may include autoimmune myasthenia gravis.
[0183] The following examples are not intended to be limited to theory, but are used solely to illustrate the fusion protein, preparation method, and uses of this application, and are not intended to limit the scope of this application. ns: no significance, *p<0.05, **p<0.01, ***p<0.001, ****p<0.0001. [Examples]
[0184] Example 1: Extension of the half-life of complement inhibitors in the blood by adding an enhancing domain fragment. Objective: To construct expression vectors for two recombinant proteins (CRIg-FH-IgG 4 Fc) x 2 and His x 6-CRIg-FH-HSA) by introducing human IgG Fc or HSA into a CRIg-FH complement inhibitor, perform expression and purification in eukaryotes, and then screen and identify proteins that can extend the half-life of CRIg-FH without affecting its complement inhibitory effect by measuring complement inhibitory activity and in vivo half-life.
[0185] 1. Apparatus and materials: Electric thermostat (DK-8D, Shanghai Jinghong Laboratory Equipment Co., Ltd.), PCR machine (Mastercycler pro-Eppendorf, Eppendorf, Germany), RNA / DNA concentration / purity meter (NANODROP 2000c, Thermo Scientific, USA), gel imager (Tanon 1600, Shanghai Tianeng Technology Co., Ltd.), CO2 incubator (240i, Thermo Scientific, USA), BioRAD Mini protein Tera system (BioRAD, USA), cryogenic horizontal centrifuge (Allegra X-15R Centrifuge, Beckman Coulter, USA).
[0186] 2. Method: 2.1 Gene Cloning and Vector Construction Total RNA was extracted from the human hepatocyte cell line Hep3B using NucleoZOL (Macherey-Nagel, Germany) and reverse transcribed into cDNA using reverse transcriptase (PrimeScript™ RT Master Mix, Takara, Japan). The above cDNA was amplified by PCR using primers suitable for the gene sequences of the SCR1-5 domain (E19-K323), which encodes a functional fragment of FH complement suppression, and human serum albumin HSA. In addition, total RNA was extracted from lymphoma cells U937 using the same method, reverse transcribed into cDNA, and amplified by PCR to encode the gene sequence of the extracellular structural domain (G19-K137) of the CRIg gene.
[0187] The nucleic acid sequence encoding the FH protein is shown in SEQ ID NO: 3, the amino acid sequence of the FH protein is shown in SEQ ID NO: 4, the nucleic acid sequence encoding the SCR1-5 domain of FH is shown in SEQ ID NO: 7, and the amino acid sequence of the SCR1-5 domain of FH is shown in SEQ ID NO: 8.
[0188] The nucleic acid sequence encoding the HSA protein is shown in Sequence ID No. 11, and the amino acid sequence of the HSA protein is shown in Sequence ID No. 12.
[0189] The nucleic acid sequence encoding the CRIg protein is shown in Sequence ID No. 1, and the amino acid sequence of the CRIg protein is shown in Sequence ID No. 2. The nucleic acid sequence encoding the CRIg extracellular domain is shown in Sequence ID No. 5, and the amino acid sequence of the CRIg extracellular domain is shown in Sequence ID No. 6.
[0190] Primers containing sequences of both the CRIg extracellular domain and the FH SCR1-5 domain were designed and inserted into the pFUSE-hIgG4-Fc1 eukaryotic expression vector (InvivoGen) using overlapping PCR, thereby ligating the CRIg extracellular domain gene and the FH SCR1-5 gene. Here, the nucleic acid sequence encoding hIgG4-Fc is shown in SEQ ID NO: 9, and the amino acid sequence of the hIgG4-Fc protein is shown in SEQ ID NO: 10. Furthermore, the above CRIg extracellular domain gene was ligated to FH SCR1-5 and inserted into the pcDNA3.1 / His A (Invitrogen) expression vector by overlapping PCR with the HSA gene. The above vectors were sequenced bidirectionally to confirm the correct insertion sequence before subsequent testing, and were named pFUSE-CRIg-FH-hIgG4Fc1 and pCDNA / His-CRIg-FH-HSA, respectively.
[0191] 2.2 Protein Expression Place 293FT cells in a 15cm diameter petri dish, 2.0 × 10⁶ cells. 7The cells were spread uniformly at a density of cells / petri dish and grown to the logarithmic phase. Using Lipofectamine 2000 (Invitrogen, USA), the cells were transfected with either the PFUSE-CRIg-FH-hIgG4-Fc1 or pCDNA / His-CRIg-FH-HSA extraction plasmid constructed as described above. After incubation at 37°C for 6 hours in a 5% CO2 incubator, the medium was changed to serum-free medium for 293 protein expression (Gibco, USA), and cultured for 3 days. The supernatant was collected, centrifuged to remove cells and cell debris, concentrated using an ultrafiltration tube, and then purified.
[0192] 2.3 Protein affinity purification, buffer exchange, and concentration Using a Protein A antibody purification magnetic bead kit (BeaverNano, Suzhou, China), the (CRIg-FH-IgG4Fc)×2 recombinant protein was purified from the cell supernatant, dissolved in elution buffer, transferred to an ultrafiltration tube (Millipore, USA), and concentrated by cold centrifugation with PBS. Alternatively, using the His-Bind affinity Purification Kit (Novagen / MerckMillipore), the His×6-CRIg-FH-HSA fusion protein expressed according to the manufacturing method was purified, and similarly concentrated and stored by replacing the buffer with PBS. The resulting recombinant proteins were named (CRIg-FH-IgG4Fc)×2 and CRIg-FH-HSA, respectively (Figure 1).
[0193] 2.4 Measurement of complement inhibitory activity Using the commercially available kits WIESLAB® Complement System Classical Pathway (COMPLCP310) and WIESLAB® Complement Alternative Pathway (COMPLAP330), respectively, we detected the inhibition of the classical and alternative complement pathways by the two recombinant proteins mentioned above.
[0194] 2.5 Measurement of the half-life of recombinant protein in vivo in blood concentration SD rats (half male, half female) were intravenously injected with (CRIg-FH-IgG4Fc) x 2, and blood was collected at different time points before administration (day 1), 5 minutes after the start of administration (i.e., 2 minutes after the end of administration), 30 minutes, 4 hours, 24 hours, day 2, day 3, day 5, day 7, day 10, day 14, day 21, and day 28, and serum was separated. The concentration of recombinant protein in each sample was analyzed by ELISA. Alternatively, CRIg-FH-HSA, 1 mg / kg was intravenously injected, and serum was separated before administration, 5 minutes after the start of administration, 30 minutes, 1 hour, 3 hours, 6 hours, 12 hours, 24 hours, day 2, day 3, day 5, day 7, day 10, day 14, day 21, and day 28. CRIg-FH, 20 mg / kg, was administered intravenously (preparation method as described in the inventor's publication: Qiao Q., et al., A novel CRIg-targeted complement inhibitor protects cells from complement damage, FASEB J.2014 Nov;28 (11):4986-99). Serum was isolated before administration, 5 minutes, 30 minutes, 1 hour, 3 hours, 6 hours, 12 hours, 18 hours, 24 hours, 36 hours, 48 hours, 72 hours, and 120 hours later.
[0195] ELISA was performed using the following methods: Encapsulated rabbit anti-human CRIg monoclonal antibody (clone 202, sino biological, catalog 12163-H08H) bound to recombinant protein in the standard or recombinant protein in serum. (CRIg-FH-IgG 4 Fc) × 2 was detected using an enzyme-labeled secondary antibody, mouse anti-human IgG 4 fragment Secondary (5 c 7) [HRP] (NOVUS, catalog NB 110-7081 H), or CRIg-FH-HSA was detected using an enzyme-labeled secondary antibody, human serum albumin polyclonal antibody, HRP (ThermoFisher, catalog #PA 1-72058), or CRIg-FH was detected using an HRP-labeled rabbit anti-human FH antibody EPR 6225 (catalog #ab133536). Serum concentrations of recombinant protein were calculated from standard curves, time-drug serum concentration curves were plotted, and half-lives were calculated.
[0196] 3.Results: 3.1 Two recombinant proteins, (CRIg-FH-IgG4Fc)×2 and His×6-CRIg-FH-HSA, obtained by applying the eukaryote-induced expression and purification described above, were detected with a purity of over 95% by electrophoresis (PAGE). Their theoretical molecular weights were 146 kDa and 114 kDa, respectively, and their actual sizes were consistent with the theoretical values (Figure 2). The nucleic acid sequence of the protein encoding CRIg-FH-IgG4 Fc is shown as SEQ ID NO: 13, and the amino acid sequence of the CRIg-FH-IgG4 Fc protein is shown as SEQ ID NO: 14. The nucleic acid sequence of the protein encoding CRIg-FH-HSA is shown as SEQ ID NO: 15, and the amino acid sequence of the CRIg-FH-HSA protein is shown as SEQ ID NO: 16. The nucleic acid sequence of the protein encoding CRIg-FH is shown as SEQ ID NO: 51, and the amino acid sequence of the CRIg-FH protein is shown as SEQ ID NO: 52.
[0197] 3.1 The inhibitory activity of (CRIg-FH-IgG4 Fc)×2 and CRIg-FH-HSA on the classical and alternative pathways of human serum complement was investigated. As a result, it was found that both (CRIg-FH-IgG4 Fc)×2 and CRIg-FH-HSA have an inhibitory effect on complement. The IC50 for the former, which inhibits the classical complement pathway, was 91.38 nM (Figure 3), and the IC50 for the former, which inhibits the alternative complement pathway, was 1.04 nM (Figure 4). The IC50 for the latter, which inhibits the classical complement pathway, was 1355 nM (Figure 5), and the IC50 for the latter, which inhibits the alternative complement pathway, was 10.39 nM (Figure 6).
[0198] 3.2 (CRIg-FH-IgG4 Fc) x 2 and CRIg-FH-HSA When the concentrations of (CRIg-FH-IgG4 Fc)×2, CRIg-FH-HSA, or CRIg-FH were measured in serum collected at different time points and time-concentration pharmacokinetic curves were plotted, the curve for (CRIg-FH-IgG4 Fc)×2 showed a half-life of 142.2 hours, as shown in Figure 7; the curve for CRIg-FH-HSA showed a half-life of 32.8 hours, as shown in Figure 8; and the curve for CRIg-FH showed a half-life of 0.56 hours, as shown in Figure 28. The results showed that adding an enhancement domain (e.g., an antibody Fc fragment or a single HSA chain) significantly extended the half-life of CRIg-FH by more than 250 times and 58 times, respectively.
[0199] Example 2: Excellent complement inhibitory effect achieved by linking CRIg with the complement regulatory domain. Objective: To construct expression vectors for nine recombinant proteins: (CRIg-FH-IgG4Fc)×2, (CRIg-CD55-IgG4Fc)×2, (CRIg-CD46-IgG4Fc)×2, (CRIg-CD59-IgG4Fc)×2, (CRIg-CR1-IgG4Fc)×2, (CRIg-IgG4Fc)×2, (FH-IgG4Fc)×2, (FH-CRIg-IgG4Fc)×2, and (CRIg-L-FH-IgG4Fc)×2. By expressing and purifying these proteins in eukaryotes and examining and measuring their complement activity, we aim to determine which of the five important complement inhibitory proteins (FH, CD55, CD46, CD59, and CR1) exhibits superior complement inhibitory effects when linked to CRIg, and to clarify the effects of complement activity regulation and enhancement domain linkage on complement inhibitory activity.
[0200] 1. Apparatus and materials: Electric thermostat (DK-8D, Shanghai Jinghong Laboratory Equipment Co., Ltd.), PCR machine (Mastercycler pro-Eppendorf, Eppendorf, Germany), RNA / DNA concentration / purity meter (NANODROP 2000c, Thermo Scientific, USA), gel imager (Tanon 1600, Shanghai Tianeng Technology Co., Ltd.), CO2 incubator (240i, Thermo Scientific, USA), BioRAD Mini protein Tera system (BioRAD, USA), cryogenic horizontal centrifuge (Allegra X-15R Centrifuge, Beckman Coulter, USA)
[0201] 2. Method: 2.1 Gene Cloning and Vector Construction Total RNA was extracted from human normal pancreatic ductal epithelial cells HPDE6-C7 using NucleoZOL (Macherey-Nagel, Germany) and reverse transcribed into cDNA using reverse transcriptase (PrimeScript® RT Master Mix, Takara, Japan). The above cDNA was amplified by PCR using primers suitable for amplifying the DNA sequences encoding CD55, CD46, and CD59 (none of which contain DNA sequences encoding signal peptides). In the same manner, total RNA was extracted from human hepatocellular carcinoma cell lineage Hep3B cells using NucleoZOL, reverse transcribed into cDNA, and then amplified by PCR for the SCR1-5 domain (E19-K323) encoding the FH complement inhibitory fragment. Total RNA was extracted from lymphoma cells U937, reverse transcribed into cDNA, and then amplified by PCR for the extracellular domain (G19-K137) of the CRIg gene and the gene sequences encoding the CR1 CCP8-11 and CCP15-18 domains. Here, the nucleic acid sequence encoding CD55 is shown in SEQ ID NO: 17, and the amino acid sequence of the CD55 protein is shown in SEQ ID NO: 18. The nucleic acid sequence encoding CD46 is shown in SEQ ID NO: 19, and the amino acid sequence of the CD46 protein is shown in SEQ ID NO: 20. The nucleic acid sequence encoding CD59 is shown in SEQ ID NO: 21, and the amino acid sequence of the CD59 protein is shown in SEQ ID NO: 22. The nucleic acid sequences encoding CR1 CCP8-11 and CCP15-18 are shown in SEQ ID NOs: 61 and 63, respectively, and the protein sequences of the CR1 CCP8-11 and CCP15-18 domains are shown in SEQ ID NOs: 62 and 64, respectively.
[0202] Primers containing the coding sequences for the CRIg extracellular domain, flexible linker peptide (Gly4Ser)3, the CRIg extracellular domain, and / or the FH SCR1-5 domain (specifically, those expressing in the following four forms: CRIg extracellular domain alone, FH SCR1-5 alone, N-terminus CRIg extracellular domain with C-terminus FH SCR1-5, N-terminus FH SCR1-5 with CRIg extracellular domain), CD55, CD46, CD59, or CR1 (CCP15-18 domain) were designed simultaneously. The CRIg extracellular domain alone, FH SCR1-5 alone, the CRIg extracellular domain gene and FH SCR1-5 with and without the flexible linker peptide attached, and the CD46, CD55, CD59, or CR1 CCP15-18 gene were ligated by overlap PCR and inserted into the pFUSE-hIgG4-Fc1 eukaryotic expression vector (InvivoGen). The above vectors were sequenced in both directions to confirm that the correct insertion sequences had been identified for subsequent experiments, and these vectors were designated as pFUSE-CRIg-L-FH-IgG4Fc, pFUSE-CRIg-IgG4Fc, pFUSE-FH-IgG4Fc, pFUSE-FH-CRIg-IgG4Fc, pFUSE-CRIg-FH-, and pFUSE-FH-IgG4Fc. They were named IgG4Fc, pFUSE-CRIg-CD55-IgG4Fc, pFUSE-CRIg-CD46-IgG4Fc, pFUSE-CRIg-CD59-IgG4Fc, and pFUSE-CRIg-CR1-IgG4Fc, respectively.
[0203] 2.2 Protein Expression Place 293FT cells in a 15cm diameter petri dish, 2.0 × 10⁶ cells. 7The cells were spread uniformly at a density of cells / petri dish and grown until the logarithmic phase. Then, using Lipofectamine 2000 (Invitrogen, USA), the pFUSE-CRIg-L-FH-IgG4Fc, pFUSE-CRIg-IgG4Fc, pFUSE-FH-IgG4Fc, pFUSE-FH-CRIg-IgG4Fc, pFUSE-CRIg-FH-IgG4Fc, pFUSE-CRIg-CD55-IgG4Fc, pFUSE-CRIg-CD46-IgG4Fc, pFUSE-CRIg-CD59-IgG4Fc, or pFUSE-CRIg-CR1-IgG4Fc extracted plasmids were transfected. After incubation at 37°C for 6 hours in a 5% CO2 incubator, the medium was changed to serum-free medium for 293 protein expression (Gibco, USA), and incubated for 3 days. The supernatant was collected, centrifuged to remove cells and cell debris, concentrated using an ultrafiltration tube, and then purified.
[0204] 2.3 Protein affinity purification, buffer exchange, and concentration Using a Protein A antibody purification magnetic bead kit (BeaverNano, Suzhou, China), (CRIg-L-FH-IgG4Fc) x2, (CRIg-IgG4Fc) x2, (FH-IgG4Fc) x2, (FH-CRIg-IgG4Fc) x2, (CRIg-FH-IgG4Fc) x2, (CRIg-CD55-IgG4Fc) x2, (CRIg-CD46-IgG4Fc) x2, (CRIg-CD59-IgG4Fc) x2, or (CRIg-CR1-IgG4Fc) x2, recombinant proteins were purified from the cell supernatant, dissolved in elution buffer, transferred to an ultrafiltration tube (Millipore, USA), and converted to PBS by cold centrifugation to concentrate the proteins for storage.
[0205] 2.4 Measurement of complement inhibitory activity Using the commercially available kits WIESLAB® Complement System Classical Pathway (COMPLCP310) and WIESLAB® Complement Alternative Pathway (COMPLAP330), inhibition of the classical and alternative complement pathways by the recombinant proteins was detected, respectively.
[0206] 3.Results: 3.1 The nine recombinant proteins obtained by applying the above eukaryote-induced expression and purification methods (see Figures 9, 29, and 32 for their structures), (CRIg-IgG4Fc)×2, (FH-IgG4Fc)×2, (FH-CRIg-IgG4Fc)×2, (CRIg-L-FH-IgG4Fc)×2, (CRIg-FH-IgG4Fc)×2, (CRIg-CD55-IgG4Fc)×2, (CRIg-CD46-IgG4Fc)×2, (CRIg-CD59-IgG4Fc)×2, and (CRIg-CR1-IgG4Fc)×2, were detected with a purity of over 95% by electrophoresis (PAGE), and their theoretical molecular weights were 77, 119, 146, 146 and 148 kDa, respectively (Figure 30), 146, 153, 157 and 101 kDa. At kDa (Figure 10) and 134 kDa (Figure 33), the actual size matched the theoretical value.
[0207] The nucleic acid sequence of the protein encoding CRIg-IgG4 Fc is shown in SEQ ID NO: 53, and the amino acid sequence of the CRIg-IgG4 Fc protein is shown in SEQ ID NO: 54. The nucleic acid sequence of the protein encoding FH-hIgG4 Fc is shown in SEQ ID NO: 55, and the amino acid sequence of the FH-hIgG4 Fc protein is shown in SEQ ID NO: 56. The nucleic acid sequence of the protein encoding FH-CRIg-IgG4 Fc is shown in SEQ ID NO: 57, and the amino acid sequence of the FH-CRIg-IgG4 Fc protein is shown in SEQ ID NO: 58. The nucleic acid sequence of the protein encoding CRIg-L-FH-IgG4 Fc is shown in SEQ ID NO: 59, and the amino acid sequence of the CRIg-L-FH-IgG4 Fc protein is shown in SEQ ID NO: 60. The nucleic acid sequence of the protein encoding CRIg-CD55-IgG4 Fc is shown in SEQ ID NO: 23, and the amino acid sequence of the CRIg-CD55-IgG4 Fc protein is shown in SEQ ID NO: 24. The nucleic acid sequence of the protein encoding CRIg-CD46-IgG4 Fc is shown in SEQ ID NO: 25, and the amino acid sequence of the CRIg-CD46-IgG4 Fc protein is shown in SEQ ID NO: 26. The nucleic acid sequence of the protein encoding CRIg-CD59-IgG4 Fc is shown in SEQ ID NO: 27, and the amino acid sequence of the CRIg-CD59-IgG4 Fc protein is shown in SEQ ID NO: 28. The nucleic acid sequence of the protein encoding CRIg-CR1(CCP15-18)-IgG4 Fc is shown in SEQ ID NO: 67, and the amino acid sequence of the CRIg-CR1(CCP15-18)-IgG4 Fc protein is shown in SEQ ID NO: 68.
[0208] 3.2 The authors measured the inhibitory activity of five recombinant proteins—(CRIg-IgG4 Fc)×2, (FH-IgG4 Fc)×2, (FH-CRIg-IgG4Fc)×2, (CRIg-FH-IgG4Fc)×2 and (CRIg-L-FH-IgG4Fc)×2—on the human serum complement alternative pathway, and the inhibitory activity of five recombinant proteins—(CRIg-FH-IgG4Fc)×2, (CRIg-CD55-IgG4Fc)×2, (CRIg-CD46-IgG4Fc)×2, (CRIg-CD59-IgG4Fc)×2 and (CRIg-CR1-IgG4Fc)×2—on the human serum complement classical and alternative pathways. Please refer to Figure 31 for the inhibitory effects of five recombinant proteins—(CRIg-IgG4 Fc)×2, (FH-IgG4 Fc)×2, (FH-CRIg-IgG4Fc)×2, (CRIg-FH-IgG4Fc)×2, and (CRIg-L-FH-IgG4Fc)×2—on the human serum complement alternative pathway. The detailed IC50 values were 248.4 nM, 138.8 nM, 1.48 nM, 0.75 nM, and 0.69 nM, respectively (Table 1). These results indicate that (1) the inhibitory effect on complement by CRIg alone or FH is lower than the inhibitory effect on complement after both are linked, and that linking CRIg to the N-terminus or C-terminus of FH can enhance the complement inhibitory effect. Furthermore, it was shown that when both are linked, CRIg is located at the N-terminus of FH, and the inhibitory effect on complement is slightly better than when it is located at the C-terminus of FH. Finally, it was found that the inhibitory effect on complement can be enhanced by linking CRIg and FH via a flexible peptide such as (Gly4Ser)3, or by direct linkage.
[0209] Furthermore, the inhibitory effects of (CRIg-FH-IgG4Fc)×2 on the classical and alternative pathways to complement are shown in Figures 3 and 4, respectively; the inhibitory effects of (CRIg-CD55-IgG4Fc)×2 on the classical and alternative pathways to complement are shown in Figures 11 and 12, respectively; the inhibitory effects of (CRIg-CD46-IgG4Fc)×2 on the classical and alternative pathways to complement are shown in Figures 13 and 14; the inhibitory effects of (CRIg-CD59-IgG4Fc)×2 on the classical and alternative pathways to complement are shown in Figures 15 and 16, respectively; and the inhibitory effects of (CRIg-CR1-IgG4Fc)×2 on the classical and alternative pathways to complement are shown in Figures 34 and 35, respectively. Details of IC50 inhibiting the classical pathway to complement are shown in Table 2. Specifically, the IC50 values for the classical and alternative complement pathways inhibited by (CRIg-FH-IgG4 Fc)×2 were 91.38 nM and 1.04 nM, respectively (a certain difference was observed between the two measurements of inhibitory activity for the alternative pathway, i.e., 0.75 nM and 1.04 nM, which may be due to the test lot); the IC50 values for the classical and alternative complement pathways inhibited by (CRIg-CD55-IgG4Fc)×2 were 23.25 nM and 19.66 nM, respectively; the classical pathway IC50 for (CRIg-CD46-IgG4Fc)×2 inhibiting complement was 44.06 nM; the classical pathway IC50 for (CRIg-CD59-IgG4Fc)×2 inhibiting complement was 44.84 nM; and the classical and alternative complement pathway IC50 values for (CRIg-CR1-IgG4Fc)×2 inhibiting complement were 35.75 nM, respectively. The concentrations were nM and 30.26 nM. All five fusion proteins were found to inhibit both the classical and alternative pathways.
[0210] [Table 1]
[0211] Example 3: Development of a bispecific, target-directed complement inhibitor Objective: To construct three types of bispecific target-directed recombinant protein mp expression vectors: (CRIg-CD55-IgG1 Fc)(CRIg-FH-IgG1Fc), (CRIg-CD46-IgG1 Fc)(CRIg-CD59-IgG1 Fc), and (CRIg-CD55-IgG1 Fc)(CRIg-CD59-IgG1 Fc). To enable eukaryotic expression and purification of these fusion proteins, and to measure their complement inhibitory activity, thereby facilitating the screening of more potent complement inhibitors.
[0212] 1. Apparatus and materials: Electric thermostat (DK-8D, Shanghai Jinghong Laboratory Equipment Co., Ltd.), PCR machine (Mastercycler pro-Eppendorf, Eppendorf, Germany), RNA / DNA concentration / purity meter (NANODROP 2000c, Thermo Scientific, USA), gel imager (Tanon 1600, Shanghai Tianeng Technology Co., Ltd.), CO2 incubator (240i, Thermo Scientific, USA), BioRAD Mini protein Tera system (BioRAD, USA), cryogenic horizontal centrifuge (Allegra X-15R Centrifuge, Beckman Coulter, USA)
[0213] 2. Method: 2.1 Gene Cloning and Vector Construction Mutagenic primers were designed, and the primer site of the pFUSE-hIgG1-Fc1 eukaryotic expression vector was mutated using a point mutagenesis kit (Toyobo, Japan) (Alegre et al., 1992; Carter, 2001; Merchant et al., 1998; Ridgway et al., 1996; Xu et al., 2000). Two mutant vectors, the pFUSE-hIgG1-Fc1 knob mutant and the pFUSE-hIgG1-Fc1 hole mutant, were created and transfected.
[0214] Here, the nucleic acid sequence encoding IgG1 Fc is shown as SEQ ID NO: 29, and the amino acid sequence of the IgG1 Fc protein is shown as SEQ ID NO: 30. The nucleic acid sequence encoding the Knob mutant is shown as SEQ ID NO: 31, and the amino acid sequence of the Knob mutant protein is shown as SEQ ID NO: 32. The nucleic acid sequence encoding the Hole mutant is shown as SEQ ID NO: 33, and the amino acid sequence of the Hole mutant protein is shown as SEQ ID NO: 34.
[0215] The CRIg-FH, CRIg-CD46, CRIg-CD55, and CRIg-CD59 gene sequences constructed in Examples 1 and 2 were inserted into pFUSE-hIgG1-Fc knob and hIgG1-Fc mutant vectors using a one-step rapid cloning kit (Shanghai Yisheng Biotechnology Co., Ltd.), and the resulting plasmids were named pFUSE-CRIg-CD46-hIgG1 Fc knob and pFUSE-CRIg-CD55-hIgG1 Fc knob, respectively. Furthermore, the fusion fragments CRIg-FH and CRIg-CD59 were inserted into the pFUSE-IgG1-FC hole using the same kit, and the resulting plasmids were named pFUSE-CRIg-FH-IgG1 Fc hole and pFUSE-CRIg-CD59-IgG1 Fc hole, respectively.
[0216] Here, the nucleic acid sequence encoding the CRIg-CD46-IgG1 Fc knob is shown in SEQ ID NO: 35, and the amino acid sequence of the CRIg-CD46-IgG1 Fc knob protein is shown in SEQ ID NO: 36. The nucleic acid sequence encoding the CRIg-CD55-IgG1 Fc knob is shown in SEQ ID NO: 37, and the amino acid sequence of the CRIg-CD55-IgG1 Fc knob protein is shown in SEQ ID NO: 38. The nucleic acid sequence encoding the CRIg-FH-IgG1 Fc hole is shown in SEQ ID NO: 39, and the amino acid sequence of the CRIg-FH-IgG1 Fc hole protein is shown in SEQ ID NO: 40. The nucleic acid sequence encoding the CRIg-CD59-IgG1 Fc hole is shown in SEQ ID NO: 41, and the amino acid sequence of the CRIg-CD59-IgG1 Fc hole protein is shown in SEQ ID NO: 42.
[0217] 2.2 Protein Expression Place 293FT cells in a 15cm diameter petri dish, 2.0 × 10⁶ cells. 7 The cells were spread uniformly at a density of cells / petri dish and grown to the logarithmic phase. Using Lipofectamine 2000 (Invitrogen, USA), the pFUSE-CRIg-CD46-hIgG1 Fc knob, pFUSE-CRIg-CD59-hIgG1 Fc hole plasmids, pFUSE-CRIg-CD55-hIgG1 Fc knob, pFUSE-CRIg-CD59-hIgG1 Fc hole, pFUSE-CRIg-CD55-hIgG1 Fc knob, and pFUSE-CRIg-FH-hIgG1 Fc hole plasmids were transfected. After incubation at 37°C for 6 hours in a 5% CO2 incubator, the medium was changed to serum-free medium for 293 protein expression (Gibco, USA), and cultured for 3 days. The supernatant was collected, centrifuged to remove cells and cell debris, concentrated using an ultrafiltration tube, and then purified.
[0218] 2.3 Protein affinity purification, buffer exchange, and protein concentration Using a Protein A antibody purification magnetic bead kit (BeaverNano, Suzhou, China), recombinant proteins (CRIg-CD46-IgG1 Fc)(CRIg-CD59-IgG1 Fc), (CRIg-CD55-IgG1 Fc)(CRIg-CD59-IgG1 Fc) and (CRIg-CD55-IgG1 Fc)(CRIg-FH-IgG1 Fc) were purified from the cell supernatant, dissolved in elution buffer, transferred to an ultrafiltration tube (Millipore, USA), and converted to PBS by cold centrifugation to concentrate the proteins for storage.
[0219] 2.4 Measurement of complement inhibitory activity The inhibitory effects of the two recombinant proteins on the classical and alternative complement pathways were detected using commercially available kits, WIESLAB® Complement System Classical Pathway (COMPLCP310) and WIESLAB® Complement Alternative Pathway (COMPLAP330). The data were analyzed using Graphpad Prism 7.0 software.
[0220] 3.Results: 3.1 The three recombinant proteins obtained by applying the above eukaryote-induced expression and purification methods, (CRIg-CD55-IgG1 Fc)(CRIg-FH-IgG1 Fc), (CRIg-CD46-IgG1 Fc)(CRIg-CD59-IgG1 Fc), and (CRIg-CD55-IgG1 Fc)(CRIg-CD59-IgG1 Fc) (Figure 17), were detected with a purity of over 95% by electrophoresis (PAGE), and their theoretical molecular weights were 151, 130, and 128 kDa, respectively, with their actual sizes matching the theoretical values (Figure 18).
[0221] 3.2 Table 2 shows the IC50 inhibitory activity of three types of bispecific target-directed complement inhibitors against the classical and alternative complement pathways. The inhibitory effects of (CRIg-CD55-IgG1 Fc) and (CRIg-FH-IgG1 Fc) on the classical and alternative complement pathways are shown in Figures 19 and 20, respectively. The inhibitory effects of (CRIg-CD46-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on the classical and alternative complement pathways are shown in Figures 21 and 22, respectively. The inhibitory effects of (CRIg-CD55-IgG1 Fc) and (CRIg-CD59-IgG1 Fc) on the classical and alternative complement pathways are shown in Figures 23 and 24, respectively. All three types of bispecific target-directed complement inhibitors can inhibit either the classical or alternative complement pathway.
[0222] [Table 2]
[0223] Example 4: Therapeutic effect of (CRIg-FH-IgG4Fc) × 2 on a rat model of myasthenia gravis. Objective: To select a complement inhibitor (CRIg-FH-IgG4Fc)×2 from the above fusion proteins and verify its effectiveness in vivo against complement hyperactivation (excessive activation) diseases.
[0224] Autoantibodies against acetylcholine receptors (AChRs) bind to AChRs at the neuromuscular junction, directly reducing AChR expression or indirectly causing AChR dysfunction or decreased expression through the classical complement activation pathway. Both mechanisms lead to neuromuscular conduction disorders and, consequently, muscle weakness, which are clinical symptoms of myasthenia gravis (MG) (Gomez et al., 2010; Phillips and Vincent, 2016). The authors investigated the therapeutic effects of (CRIg-FH-IgG4Fc)×2 complement inhibitors in a myasthenia gravis model rat and experimental autoimmune myasthenia gravis (EAMG), laying the foundation for potential future clinical applications.
[0225] 1. Apparatus and materials: Animal scales (Shanghai Precision Scientific Instruments Co., Ltd., YP2001N), Lewis rats (Beijing Vital River Laboratory Animal Technology Co., Ltd.), InVivo MAb anti-human / rat / fish AChR (Bio X Cell, West Lebanon, NH).
[0226] 2. Method: 2.1 EAMG induction Intraperitoneal administration of anti-AChR antibody mAb35 (1-3 mg / kg) to female rats over approximately 4 weeks is a commonly used international method for inducing an experimental autoimmune myasthenia gravis-like (EAMG) model. (Hepburn et al., 2007; Liu et al., 2007; Papanastasiou et al., 2000; Poulas et al., 2000) Rats were divided into seven groups based on five different doses (0.5, 1, 2, 5, 10 mg / kg): a control group (no anti-AChR antibody injection), a group receiving intraperitoneal injection of anti-AChR antibody (1.5 mg / kg) and PBS injection, and a group receiving intraperitoneal injection of anti-AChR antibody and treatment with (CRIg-FH-IgG4Fc) × 2. The experiments were completed in two phases. 40 rats were used in the first phase and 50 rats in the second phase. The groupings are shown in Table 3.
[0227] [Table 3]
[0228] 2.2 Monitoring of EAMG Phenotypes Rats were subjected to experiments after an adaptation period of at least 5–7 days. Body weight was measured before and 24 hours after each experiment, and clinical scores were performed. The specific scoring criteria were as follows: 0 points for being able to grasp and lift the cage lid, 1 point for being able to grasp but not lifting the lid, 2 points for not being able to grasp, 3 points for not being able to grasp and having hind limb paralysis, and 4 points for death or being in a state of death. (Piddlesden et al., 1996; Soltys et al., 2009) As a result, in the PBS control group of the model, most rats died or were facing death at 48 hours, so in accordance with ethics, observation of this group was terminated at 48 hours. On the other hand, in the (CRIg-FH-IgG4Fc)×2 drug administration group, clinical scores had almost recovered at 96 hours, so observation of this group was terminated at 96 hours, and the animals were counted for 24-hour and 48-hour mortality rates.
[0229] 2.3 Statistical Processing Experimental data were expressed using the mean ± standard error (Mean ± SEM). Body weight was calculated using a two-tailed t-test, clinical scores using two-way ANOVA, and mortality rates using the chi-square test (Chi-Square and Fisher's Exact Test), with ns: no significance, *p<0.05, **p<0.01, ***p<0.001, and ****p<0.0001.
[0230] 3.Results: Normal rats that were not administered anti-AChR antibody or (CRIg-FH-IgG4Fc)×2 gradually increased in body weight, but rats injected with anti-AChR antibody without drug administration lost 11.2% of their body weight at 24 hours and 15.5% at 48 hours. 82% (14 / 17) had a clinical score of 3-4 at 24 hours, and 88% (15 / 17) had a clinical score of 3-4 at 48 hours. Of the 17 rats, 2 were mortally injured or died at 24 hours, and 9 died at 48 hours, resulting in a mortality rate of 52.9% (9 / 17). Of the remaining 8 surviving rats, 6 were also mortally injured, demonstrating the successful construction of the EAMG rat model (see Figures 25-27).
[0231] Pretreatment with (CRIg-FH-IgG4Fc)×2 significantly improved EAMG symptoms. At 24 hours after administration of the minimum dose of 0.5 mg / kg, weight loss was only 1.6% and the clinical score was 1.1. At 48 hours, weight loss was only 2.3% and the clinical score was 1.3, with an animal mortality rate of 14.3% (1 / 7), demonstrating significant efficacy. After administration of high doses, no significant weight loss was observed 24 hours later, and the clinical score gradually decreased in a dose-dependent relationship. At 48 hours, weight gradually recovered and the clinical score gradually decreased, indicating a quantitative effect relationship with dose, i.e., higher doses resulted in greater weight gain and a decrease in the clinical score (Figures 25-27). Furthermore, when all animals in the drug-administered group were observed up to 96 hours, the weight of surviving rats gradually increased at 48 hours, and the clinical score gradually decreased to normal levels, confirming that EAMG symptoms were gradually returning to normal.
[0232] 4. Consideration: The EAMG phenotype was successfully modeled by intraperitoneal injection of the anti-AChR antibody mAb35 (1.5 mg / kg) into female rats in approximately 4 weeks, resulting in significant weight loss, a rapid decrease in activity, decreased forelimb grip strength, and death of the animals within 48 hours. Weight monitoring, clinical scoring, and animal mortality monitoring confirmed that LM007 was effective against EAMG at a dose of 0.5 mg / kg, with efficacy and efficacy being dose-dependent with increasing doses, and the disease process being almost completely inhibited at doses of 5 mg / kg or higher. In the anti-AChR antibody-induced EAMG model rats, complement hyperactivation exerted the primary effect, although a small number of rats may exhibit pathogenicity independently of complement activation.
Claims
1. A fusion protein comprising a first polypeptide chain and a second polypeptide chain, The first polypeptide chain and the second polypeptide chain are, (i) CRIg extracellular domain; (ii) Complement regulatory domains including factor H (FH); And, (iii) Having an enhancement domain that includes an IgG Fc domain, The enhancing domains of the first polypeptide chain and the second polypeptide chain can interact to form a dimer. The aforementioned fusion protein.
2. The fusion protein according to claim 1, wherein the CRIg extracellular domain comprises the amino acid sequence shown in SEQ ID NO:
6.
3. The fusion protein according to claim 1 or 2, wherein the C-terminus of the CRIg extracellular domain is directly or indirectly ligated to the N-terminus of the complement regulatory domain, or the N-terminus of the CRIg extracellular domain is directly or indirectly ligated to the C-terminus of the complement regulatory domain.
4. The fusion protein according to any one of claims 1 to 3, wherein the C-terminus of the complement regulatory domain is directly or indirectly ligated to the N-terminus of the enhancement domain, or the C-terminus of the CRIg extracellular domain is directly or indirectly ligated to the N-terminus of the enhancement domain.
5. The fusion protein according to claim 3 or 4, wherein the indirect linkage includes linkage by a linker.
6. The fusion protein according to claim 5, wherein the linker comprises the amino acid sequence shown in any one of SEQ ID NOs: 44, 46, 48, and 50.
7. The fusion protein according to any one of claims 1 to 6, wherein the complement regulatory domain comprises the amino acid sequence shown in SEQ ID NO:
8.
8. A fusion protein according to any one of claims 1 to 7, comprising the CRIg extracellular domain, the complement regulatory domain, and the enhancement domain in order from the N-terminus to the C-terminus, or comprising the complement regulatory domain, the CRIg extracellular domain, and the enhancement domain in order from the N-terminus to the C-terminus.
9. The fusion protein according to any one of claims 1 to 8, wherein the IgG Fc domain comprises a protein selected from the group consisting of human IgG1 Fc and human IgG4 Fc.
10. The fusion protein according to any one of claims 1 to 9, wherein the IgG Fc domain comprises the protein described in any one of SEQ ID NOs: 10, 30, 32, and 34.
11. The first polypeptide chain comprises the CRIg extracellular domain, the first complement regulatory domain, and the first IgG Fc domain, The second polypeptide chain comprises the CRIg extracellular domain, the second complement regulatory domain, and the second IgG Fc domain, The first IgG Fc domain and the second IgG Fc domain can interact with each other to form a dimer. The fusion protein according to any one of claims 1 to 10.
12. The fusion protein according to claim 11, wherein the first complement regulatory domain is identical to the second complement regulatory domain.
13. The fusion protein according to claim 11 or 12, wherein the first IgG Fc domain is identical to the second IgG Fc domain.
14. The fusion protein according to any one of claims 11 to 13, wherein the first IgG Fc domain and the second IgG Fc domain include the amino acid sequence shown in either SEQ ID NO: 10 or 30.
15. The fusion protein according to any one of claims 1 to 14, wherein the first polypeptide chain is identical to the second polypeptide chain.
16. The fusion protein according to any one of claims 1 to 15, wherein the first polypeptide chain and the second polypeptide chain include the amino acid sequence shown in SEQ ID NO:
14.
17. One or more isolated nucleic acid molecules encoding the fusion protein according to any one of claims 1 to 16.
18. A vector comprising the nucleic acid molecule described in claim 17.
19. A cell that contains the vector described in claim 18, or expresses the fusion protein described in any one of claims 1 to 16.
20. A method for preparing a fusion protein according to any one of claims 1 to 16, comprising the following steps: To synthesize a fusion protein according to any one of claims 1 to 16, and / or Culture the cells according to claim 19 under conditions that express the fusion protein according to any one of claims 1 to 16.
21. A pharmaceutical composition comprising a fusion protein according to any one of claims 1 to 16, and optionally a pharmaceutically acceptable carrier.
22. In the preparation of pharmaceuticals, use of a fusion protein according to any one of claims 1 to 16 or a pharmaceutical composition according to claim 21, The aforementioned drug is used to treat diseases related to targeted inhibition of complement activation.
23. The use according to claim 22, wherein the disease includes autoimmune diseases.
24. The use according to claim 22 or 23, wherein the disease includes autoimmune myasthenia gravis.
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