Liposome-based toxoid vaccine, preparation method and application of liposome-based toxoid vaccine in prevention of bacterial infection

Through the liposome-based toxin vaccine platform adsorbs and encapsulates bacterial virulence factors, combined with CpG immune adjuvants, the balance between effectiveness and safety of existing bacterial vaccines is solved, and the immune effect and adaptability of the vaccine is significantly improved.

CN120053626AActive Publication Date: 2025-05-30THE SECOND HOSPITAL AFFILIATED TO WENZHOU MEDICAL COLLEGE

Patent Information

Application Number
CN202510551299.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-05-30
Estimated Expiration
2045-04-29

AI Technical Summary

Technical Problem

It is difficult to achieve a balance of effectiveness and safety during the preparation of existing bacterial vaccines, and the nanotoxin-based vaccine based on cell membranes is limited in efficiency and cannot fully utilize its potential for anti-virulence factor immunotherapy.

Method used

The liposome-based toxin vaccine platform was used to construct a toxin vaccine by fusing egg yolk soft phospholipids, sphingomyelin and lipid-modified polyethylene glycol to absorb the virulence factors of MRSA or CRPA and wrap polylactic acid-glycolic acid copolymer nanoparticles containing CpG.

Benefits of technology

It significantly improves the abundance of virulence factors, enhances the body's anti-virulence factor immune response, improves its resistance to bacterial infection, avoids the immune risk of allogeneics, and achieves a broader spectrum of adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a liposome-based toxoid vaccine, a preparation method and an application of the liposome-based toxoid vaccine in prevention of bacterial infection, the vaccine comprises yolk lecithin PC-98T, sphingomyelin Sm, lipid PS formed by fusing lipid modified polyethylene glycol DSPE-mPEG2000, and PSV formed by adsorbing a virulence factor sMV or sPV of MRSA or CRPA, and a toxoid vaccine PSV-CNP formed by polylactic acid-glycolic acid copolymer nano-particles CNP containing CpG is wrapped by the CpG-containing polylactic acid-glycolic acid copolymer nano-particles CNP. The preparation method mainly comprises the following steps: S1, fusing egg yolk lecithin PC-98T, sphingomyelin Sm and lipid modified polyethylene glycol DSPE-mPEG2000 to form lipid PS; s2, wrapping poly (lactic-co-glycolic acid) nanoparticles CNP containing CpG with lipid PS to form PS-CNP; s3, the PS-CNP and a virulence factor sMV or sPV of MRSA or CRPA are subjected to incubation construction, and the toxin vaccine PSV-CNP is obtained. The vaccine has broad-spectrum adaptability, avoids the immune risk of allogeneic, can significantly improve the abundance of virulence factors, can more effectively activate the anti-virulence factor immune response of the body, and enhances the bacterial infection resistance of the body.
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Description

Technical Field

[0001] The present invention relates to biomedicine, specifically to liposome-based toxoid vaccines, preparation methods thereof, and their applications in preventing bacterial infections. Background Art

[0002] Antibiotics are one of the most conventional and effective means for treating bacterial infections. However, the irrational use of antibiotics is accelerating the global process of bacterial resistance, giving rise to Gram-positive bacteria represented by methicillin-resistant Staphylococcus aureus (MRSA) and Gram-negative bacteria represented by carbapenem-resistant Pseudomonas aeruginosa (CRPA). The problem of bacterial resistance has significantly increased the difficulty and cost of treating bacterial infections, imposing an additional global medical burden. Staphylococcus aureus , MRSA) and Gram-negative bacteria represented by carbapenem-resistant Pseudomonas aeruginosa (CRPA). Pseudomonas aeruginosa ,CRPA). The problem of bacterial resistance has significantly increased the difficulty and cost of treating bacterial infections, imposing an additional global medical burden.

[0003] Bacterial vaccines are an effective means for preventing bacterial infections, featuring no drug resistance selection pressure, excellent safety, and high efficiency. They can induce protective and long-lasting antibacterial immune responses in the host. Different from the simple structure of viruses, bacteria contain complex antigens, and the immunogenic potential of these antigens is usually unclear, making the development of bacterial vaccines often more difficult than that of viral vaccines.

[0004] Currently, the development of bacterial vaccines mainly relies on attenuated or inactivated whole bacteria, but there are balance issues between safety and effectiveness. For example, live attenuated vaccines can induce strong immune responses but carry an infection risk; while inactivated vaccines may lose key immunogenic components during the inactivation process, thereby reducing the effectiveness of the vaccine.

[0005] In addition, intact proteins of bacterial origin have also been directly used for vaccination, but the risk of side effects (such as severe inflammation or allergic reactions) often outweighs the benefits of the vaccine. Another feasible approach is to use known virulence factors to construct virulence factor vaccines for preventive vaccination, such as the tetanus vaccine and diphtheria vaccine currently in clinical use. Many bacteria secrete a large number of virulence factors, such as pore-forming toxins (PFTs), to help them survive in the host, making them important antibacterial immune materials. Although vaccines based on virulence factors have broad prospects, existing strategies face two major drawbacks: (1) When preparing toxoid vaccines based on virulence factors, processes such as denaturation are required, making it difficult to achieve a balance between effectiveness and safety and affecting the immune effect; (2) The developed vaccines based on virulence factors lack multiple virulence factor antigens involved in the infection process, resulting in limited immune breadth.

[0006] Cell membrane-based nano-toxoids have attracted much attention in recent years due to their applications in bacterial vaccine development. They capture and inactivate toxins using the plasma membrane of target cells, thereby improving the safety of toxoid vaccines without affecting immunogenicity and better addressing the deficiencies of the above-mentioned toxoid vaccine strategies. However, some unnecessary membrane proteins on the cell membrane surface, such as the "don't eat me" signal protein CD47, not only occupy the space for toxins to bind to lipids but also may reduce the recognition by antigen-presenting cells. Therefore, the efficiency of capturing bacterial virulence factors based on cell membranes is limited, and the potential of its anti-virulence factor immunotherapy cannot be fully exerted. In addition, the construction of vaccines based on the adsorption of virulence factors by cell membranes is limited by individual differences, and vaccines must be prepared using the cells of the cell membrane provider itself, otherwise, it may bring the risk of allogeneic immunity. In summary, it is imperative to develop a new type of toxoid vaccine platform that can enhance the capture of bacterial virulence factors and is more suitable for clinical translation. Summary of the Invention

[0007] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a liposome-based toxoid vaccine, its preparation method and its application in preventing bacterial infections, which can have broad adaptability, avoid the risk of allogeneic immunity, can significantly increase the abundance of virulence factors, can more effectively activate the anti-virulence factor immune response of the body, and enhance the body's ability to resist bacterial infections.

[0008] To achieve the above purpose, the present invention provides the following technical solutions: A liposome-based toxoid vaccine includes lipid PS formed by the fusion of egg yolk phosphatidylcholine PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000, adsorbs the virulence factors sMV or sPV of MRSA or CRPA to form PSV, and encapsulates the polylactic acid-glycolic acid copolymer nanoparticles CNP containing CpG to form the toxoid vaccine PSV-CNP.

[0009] A preparation method of a liposome-based toxoid vaccine includes the following steps S1 Fuse egg yolk phosphatidylcholine PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 to form lipid PS; S2 Encapsulate the polylactic acid-glycolic acid copolymer nanoparticles CNP containing CpG with lipid PS to form PS-CNP; S3 Incubate PS-CNP with the virulence factors sMV or sPV of MRSA or CRPA to construct and obtain the toxoid vaccine PSV-CNP.

[0010] As a further improvement of the present invention, in S1, the ratio of egg yolk phosphatidylcholine PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 is 6:3:1 (w / w / w).

[0011] As a further improvement of the present invention, phosphatidylcholine PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 in S1 are mixed and dissolved in chloroform. The chloroform is removed by rotary evaporation, and the lipid film is hydrated with a 10% sucrose solution to form a lipid PS suspension.

[0012] As a further improvement of the present invention, in S2, the lipid PS suspension and CNP are mixed at a lipid:PLGA mass ratio of 2:1 (w / w), and then PS-CNP is prepared by combining water bath ultrasound and probe ultrasound.

[0013] As a further improvement of the present invention, in S3, PS-CNP and virulence factors sMV or sPV are mixed and incubated at 37°C for 30 min to construct a toxoid vaccine PSV-CNP.

[0014] An application of a liposome-based toxoid vaccine in preventing bacterial infections, wherein the liposome-based toxoid vaccine platform adopts the liposome-based toxoid vaccine platform as described above.

[0015] An application of a liposome-based toxoid vaccine in preventing bacterial infections, wherein the liposome-based toxoid vaccine platform adopts the liposome-based toxoid vaccine obtained by the preparation method of the liposome-based toxoid vaccine according to any one of the above improvement schemes.

[0016] The beneficial effects of the present invention are as follows: a lipid structure imitating the cell membrane can be obtained to more effectively adsorb bacterial virulence factors, so that the abundance of virulence factors in the toxoid vaccine is significantly increased, and the anti-virulence factor immune response of the body can be more effectively activated, enhancing the body's ability to resist bacterial infections. Since it does not involve cell membranes, this lipid-based toxoid vaccine has broad adaptability and avoids the immune risk of allogeneic substances. To further enhance the response intensity of the immune system, CpG oligodeoxynucleotides (CpG ODN) are also introduced into the system as immune adjuvants. CpG is a synthetic short single-stranded DNA fragment containing a specific non-methylated CpG dinucleotide sequence, which can specifically activate TLR9, thereby causing a strong immune response. Description of the Drawings

[0017] Figure 1 It is a diagram showing the difference in the ability of PS-NP and RM-NP to adsorb sMV and sPV; Figure 2 It is a diagram showing the preparation and characterization of the PSV-CNP toxoid vaccine; Figure 3 It is a diagram showing the evaluation of the enrichment of PSV-CNP toxoid vaccine in the lymph nodes of ICR mice; Figure 4Antibody titer diagram for subcutaneous immunization of ICR mice with PSV-CNP toxoid vaccine against sMV, sPV, MRSA lysate, and CRPA lysate; Figure 5 Subcutaneous and systemic infection comparison diagram for subcutaneous immunization of ICR mice with PSV-CNP toxoid vaccine for the prevention of MRSA and CRPA. Specific implementation mode

[0018] The following will further elaborate on the present invention in combination with the embodiments given in the accompanying drawings.

[0019] This solution involves a lipid (PS) formed by the fusion of egg yolk phosphatidylcholine (PC-98T), sphingomyelin (Sm), and lipid-modified polyethylene glycol (DSPE-mPEG2000) for adsorbing the virulence factors of MRSA and CRPA (referred to as sMV and sPV respectively) to form (PSV), and simultaneously encapsulating a poly(lactic-co-glycolic acid) nanoparticle (CNP) containing CpG to construct a novel toxoid vaccine (PSV-CNP). The prepared PSV-CNP toxoid vaccine can activate ICR mice to produce neutralizing antibodies against sMV and sPV, enhancing the ability of mice to resist MRSA and CRPA infections.

[0020] In this solution, PC-98T, Sm, and DSPE-mPEG2000 are mixed in a ratio of 6:3:1 (w / w / w) and dissolved in chloroform. The chloroform is removed by rotary evaporation, and the lipid film is hydrated with a 10% sucrose solution to form a PS hybrid lipid suspension. Subsequently, the PS suspension and CNP are mixed at a lipid:PLGA mass ratio of 2:1 (w / w), and PS-CNP is prepared first by water bath ultrasound combined with probe ultrasound. Subsequently, the extracted and separated sMV and sPV are respectively mixed with PS-CNS, incubated at 37°C for 30 min, and then centrifuged. After removing the supernatant, the toxoid vaccine PSV-CNP is obtained. The enrichment of the toxoid vaccine can be detected in the nearby lymph nodes 24 h after subcutaneous injection of the toxoid vaccine into ICR mice. After 3 subcutaneous immunizations with the toxoid vaccine, a significant increase in the antibody titers against sMV and sPV in the mouse serum can be detected. Finally, the preventive effect of the toxoid vaccine against MRSA and CRPA infections in ICR mice is detected through MRSA and CRPA subcutaneous and systemic infection models (bacteremia models).

[0021] Specifically: 1. Preparation of CNP CNP was prepared by encapsulating CpG into PLGA nanoparticles using the double emulsion method. 0.5 mL of a 50 mg / mL PLGA dichloromethane solution was prepared. 50 μL of a 1×TE buffer containing CpG was mixed with 50 μL of a 400 mM Tris buffer and then added to the 0.5 mL PLGA solution. The mixture was emulsified by ultrasound (80 W, 1 min, 2 sec on / 1 sec off) to form a primary emulsion. Subsequently, the primary emulsion was added to 5 mL of a 10 mM Tris buffer (pH = 8.0) and further emulsified by ultrasound to form a double emulsion. Then, the double emulsion was added to 10 mL of a 10 mM Tris buffer (pH = 8.0), and the dichloromethane was removed by stirring and evaporation for 180 min. The final volume of the liquid was about 15 mL, and the Tris solution of CNP was obtained. PLGA nanoparticles (NP) without CpG were prepared using Tris buffer without CpG according to the above procedure.

[0022] 2. Preparation of virulence factors (sMV, sPV) of MRSA and CRPA The MRSA USA300 strain was streaked on a TSB solid medium and cultured for 30 h. Then, a single colony was picked and transferred to 4 mL of a TSB liquid medium and cultured for another 12 h. Subsequently, the 4 mL bacterial solution was transferred to 200 mL of a TSB liquid medium and cultured at a speed of 200 rpm / min for 24 h. The bacterial supernatant was collected by centrifugation and filtered through a 0.2 μm filter membrane for later use. Subsequently, the collected supernatant was freeze-dried and then resuspended in 1 / 10 volume of deionized water to prepare a 10× supernatant, which was the MRSA virulence factor (sMV) and stored at -80 °C for later use.

[0023] The CRPA strain was streaked on a TSB solid medium and cultured for 24 h. Then, a single colony was picked and transferred to 5 mL of a TSB liquid medium and cultured at a shaking speed of 200 rpm / min for 12 h. Then, the bacterial solution was transferred to 500 mL of fresh TSB liquid medium and cultured at a speed of 200 rpm / min for 24 h. The bacterial supernatant was collected by centrifugation and filtered through a 0.2 μm filter membrane for later use. Subsequently, the collected supernatant was freeze-dried and then resuspended in 1 / 10 volume of deionized water to prepare a 10× supernatant, which was the CRPA virulence factor (sPV) and stored at -80 °C for later use.

[0024] 3. Study on the difference in the ability of PS-NP and RM-NP to adsorb sMV and sPV Prepare the PS liposome suspension by the thin-film hydration method. Dissolve 60 mg of PC-98T (PC), 30 mg of sphingomyelin (Sm), and 10 mg of lipid-modified PEG (DSPE-mPEG2000) in chloroform. Remove the chloroform completely by rotary evaporation. Subsequently, add 4.5 mL of sterile 10% sucrose solution, and hydrate and wash off the lipid film at 60 °C to obtain a 20 mg / mL PS liposome suspension. Subsequently, add 1 mL of the 20 mg / mL PS liposome suspension to the Tris solution of NP such that the ratio of lipid to NP is 2:1 (w / w). First, use a water bath sonication, and then use a probe sonication (80 W, 5 min, 2 sec on / 3 sec off) to completely encapsulate NP with liposomes to form PS-NP. At the same time, in this application, the red blood cell membrane (RM) is used to replace the PS liposome to prepare RM-NP as a control group.

[0025] Subsequently, determine the dose of sMV or sPV that causes HD100 (100% hemolysis dose) of ICR mouse red blood cells. Isolate RBC from the whole blood of ICR mice and dilute the red blood cells to 5% (v / v) with PBS for use. Add different doses of sMV or sPV to 100 μL of 5% RBC suspension (v / v) respectively, and at the same time, make up the total volume of the system to 160 μL with PBS. After incubating at 37 °C for 30 min, centrifuge at 13,000 rpm for 5 min, collect the supernatant and measure the absorbance at 540 nm. Among them, the RBC group lysed by sonication is used as a positive control, and the group without any treatment is used as a negative control. The results show that as the dose of sMV or sPV increases, the hemolysin continuously increases. sMV can cause complete hemolysis of 100 μL of 5% RBC at a ratio of 2.5% (v / v), while sPV can cause complete hemolysis of 100 μL of 5% RBC at a ratio of 1.67% (v / v). The doses of the above two virulence factors that cause complete hemolysis are called HD100 ( Figure 1 a).

[0026] The sMV or sPV dose of ICR mouse RBC HD100 was incubated with different concentrations of RM-NP or PS-NP at 37 °C for 30 min, then added to 100 μL of 5% RBC suspension (v / v), and the total volume was made up to 160 μL. After incubation at 37 °C for 30 min, it was centrifuged at 13,000 rpm for 5 min, and the supernatant was collected to measure the absorbance at 540 nm to determine the neutralization effect of different doses of RM-NP or PS-NP on the virulence factors sMV or sPV. The results showed that as the added dose of RM-NP or PS-NP increased, the hemolytic ability caused by sMV (HD100) decreased continuously, and it could be completely neutralized until the lipid concentration reached 0.78 mg / mL, while the RM-NP lipid concentration required to completely neutralize sPV was 0.83 mg / mL and the PS-NP lipid concentration was 0.21 mg / mL ( Figure 1 b). The dose that completely neutralizes the hemolytic toxicity of sMV and sPV is called IC100 (100% inhibitory concentration). The ultrasonically disrupted RBC group was used as a positive control, and the group without any treatment was used as a negative control.

[0027] According to IC100:HD100, the RM-NP or PS-NP:sMV or sPV dose was incubated at 37 °C for 30 min, and then the sMV or sPV dose was continuously increased (made up to 100 μL) and added to a 96-well plate of endothelial cells HUVEC (80% confluence rate). After continued culture for 24 h, the cell viability was detected using CCK-8. This experiment detected the neutralization and adsorption effect of RM-NP or PS-NP on other types of toxins such as endothelial cells in addition to adsorbing hemolytic-related toxins at the cellular level. The results showed that although the dose of RM-NP could completely neutralize the hemolytic toxin in sMV or sPV, it could not neutralize the toxin against endothelial cells; while PS-NP could not only effectively neutralize the hemolytic toxin in sMV or sPV, but also effectively neutralize the toxin against endothelial cells ( Figure 1 c), that is, it was proved at the cellular level that the neutralization ability of PS-NP to sMV or sPV was significantly higher than that of RM-NP.

[0028] Subsequently, the present invention used proteomics technology to analyze the types and abundances of different virulence factors adsorbed by RM-NP or PS-NP on sMV or sPV (the ratio was still their respective IC100:HD100). The results showed that the adsorption ability of PS-NP for virulence factors in sMV or sPV was much greater than that of RM-NP.

[0029] 4. Preparation and Characterization of PSV-CNP Toxoid Vaccine First, determine the dose relationship between PS-CNP and sMV in the vaccine. Mix PS-CNP (1 mg / mL) with different doses of sMV and incubate at 37 °C for 30 min to allow PS-CNP to adsorb sMV to form the PSV-CNP toxoid vaccine. The results show that as the dose of sMV increases, the protein content in PSV-CNP also continuously increases (indicating that sMV is adsorbed onto the surface of PS-NP). At the same time, the particle size of PSV-CNP under physiological conditions also continuously climbs, meaning that the destruction of the PS membrane structure by sMV may lead to the exposure of internal PLGA nanoparticles and aggregation ( Figure 2 a). This speculation was confirmed by observing the mixture of PSV-CNP and different doses of sMV using a transmission electron microscope, that is, as the dose of sMV increased from 2.5 to 10 μL, the destruction of PS-CNP became more severe, resulting in the aggregation or degradation and deformation of internal PLGA under physiological conditions ( Figure 2 b). Based on the above results, determine the ratio of PS-CNP to sMV as 1 mg / mL: 2.5‰ (v / v). Measure the hydrodynamic size of PSV-CNP using a particle size and zeta potential analyzer, which is approximately 200 nm, and the surface potential is approximately -15 mV. At the same time, measure the particle size and potential of control groups such as PS-Lipo, CNP, and PS-CNP ( Figure 2 c). At the same time, prepare a nano-vaccine (PSV-NP) without CpG in this application, and prepare RMV-CNP and RMV-NP without CpG for subsequent research. Similarly, use the above ratio to determine the ratio of PS-CNP to sPV and prepare a PSV-CNP toxoid vaccine against CRPA infection.

[0030] 5. Evaluation of the enrichment of PSV-CNP toxoid vaccine in the lymph nodes of ICR mice Anesthetize ICR mice (6 - 8 weeks old) by inhaling isoflurane. Inject 125 μL of the PSV-CNP toxoid vaccine prepared with sMV (lipids or cell membranes labeled with IR780 near-infrared dye, 5 mg / mL) subcutaneously into the neck of the mice. After 24 h, euthanize the mice and open the skin of the mice to fully expose the systemic lymph nodes of the mice. Use an IVIS small animal in vivo imaging system to perform fluorescence imaging on the lymph nodes of the mice, and perform quantitative statistical analysis on the fluorescence at the lymph nodes of the mice. The experimental settings include experimental groups such as PSV-CNP, RMV-CNP, PSV-NP, RMV-NP, and an equal volume of PBS. The results show that PSV-CNP can enter the lymph node site more efficiently, which is beneficial for the maturation of B cells in the lymph nodes to produce neutralizing antibodies ( Figure 3 a - b).

[0031] 6. Study on the antibody titers produced by subcutaneous immunization of ICR mice with PSV-CNP toxoid vaccine against sMV, sPV, MRSA lysate, and CRPA lysate Isoflurane-inhaled ICR mice (6 - 8 weeks old) were subcutaneously injected with 125 μL of the toxoid vaccine PSV-CNP (5 mg / mL) prepared from sMV or sPV into the neck of the mice. The vaccination frequency was as follows: the first vaccination was completed on day 0, and then two booster vaccinations were carried out on days 7 and 14 respectively. On day 21, whole blood of ICR mice was collected, and serum was collected by centrifugation at 2000 g for 10 min. Antibody titer analysis was performed by ELISA. First, sMV (100 μL / well), sPV (100 μL / well), MRSA lysate, and CRPA lysate (10 μg / mL) were coated onto a 96-well ELISA plate using ELISA coating buffer and incubated overnight at 4°C. Subsequently, after washing the ELISA plate 3 times with PBS, it was blocked with 1% BSA for 1 h, and then mouse serum samples at different dilution multiples (10 2 , 10 3 ,10 4 , 10 5 , 10 6 and 10 7 ) were added and incubated for 2 h at room temperature. After washing 5 times with PBS, HRP-conjugated secondary antibody at a dilution of 1:200 was added and incubated for 1 h at room temperature. After rinsing 5 times with PBS, 100 μL of TMB substrate was added to each well and incubated for 8 min. Subsequently, 100 μL of ELISA stop solution was added to terminate the reaction. The absorbance was measured at 450 nm using an enzyme-linked immunosorbent assay reader. In this experiment, RMV-CNP, PSV-NP, RMV-NP, and an equal volume of PBS were set as control groups. The results showed that PSV-CNP could immunize ICR mice to produce higher antibody titers against sMV, sPV, MRSA lysate, and CRPA lysate ( Figure 4 a - b).

[0032] 7. Subcutaneous immunization of ICR mice with PSV-CNP toxoid vaccine for prevention of subcutaneous and systemic infections of MRSA and CRPA ICR mice were immunized according to the experimental procedure described in 4 to produce antibodies against sMV, MRSA lysate, sPV, and CRPA lysate. On day 21 after the primary immunization, 2 × 10 6CFU of MRSA bacteria or CRPA bacteria, and record the survival of the infected mice within 7 d and analyze the bacterial count in the skin at the infection site on the 7th d. In this experiment, RMV-CNP, PSV-NP, RMV-NP and an equal volume of PBS were set as the control groups. The results showed that immunization of ICR mice with PSV-CNP could significantly reduce the bacterial count at the infected skin site and prolong the survival rate of ICR mice, effectively preventing MRSA and CRPA infections ( Figure 5 ).

[0033] The above are only the preferred embodiments of the present invention, and the protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, several improvements and refinements made without departing from the principle of the present invention should also be regarded as the protection scope of the present invention.

Claims

1. A liposome toxoid vaccine, characterized in that: It includes lipid PS formed by the fusion of egg yolk phospholipid PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000, and adsorbs virulence factors sMV or sPV of MRSA or CRPA to form PSV, and encapsulates CpG-containing polylactic acid-glycolic acid copolymer nanoparticles CNP to form a toxoid vaccine PSV-CNP.

2. A method for preparing a liposome toxoid vaccine, characterized in that: The following steps are included S1 fuses egg yolk phospholipid PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 to form lipid PS; S2: lipid PS encapsulates CpG-containing poly(lactic-co-glycolic acid) nanoparticles (CNPs) to form PS-CNPs; S3 incubates PS-CNP with the virulence factors sMV or sPV of MRSA or CRPA to construct the toxin vaccine PSV-CNP.

3. The method for preparing a liposome toxoid vaccine according to claim 2, characterized in that: The ratio of egg yolk phospholipid PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 in S1 is 6:3:1 w / w / w.

4. The method for preparing a liposome toxoid vaccine according to claim 3, characterized in that: The egg yolk phospholipid PC-98T, sphingomyelin Sm, and lipid-modified polyethylene glycol DSPE-mPEG2000 in S1 were mixed and dissolved in chloroform. The chloroform was removed by rotary evaporation, and the lipid film was hydrated with 10% sucrose solution to form a lipid PS suspension.

5. The method for preparing a liposome toxoid vaccine according to claim 2, characterized in that: The lipid PS suspension in S2 was mixed with CNP at a lipid:PLGA mass ratio of 2:1 w / w, and then PS-CNP was prepared by water bath ultrasound combined with probe ultrasound.

6. The method for preparing a liposome toxoid vaccine according to claim 2, characterized in that: In S3, PS-CNP was mixed with virulence factors sMV or sPV and incubated at 37°C for 30 min to construct the toxoid vaccine PSV-CNP.

7. An application of a liposome toxin vaccine platform in preventing bacterial infection, characterized in that: The liposome toxoid vaccine platform adopts the liposome toxoid vaccine platform as described in claim 1.

8. An application of a liposome toxin vaccine platform in preventing bacterial infection, characterized in that: The liposome toxin vaccine platform adopts the liposome toxin vaccine obtained by the preparation method of the liposome toxin vaccine as described in any one of claims 2 to 6.

Citation Information

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