基于免疫信息学的高免疫原性多表位亚单位疫苗设计以刺激针对Junin病毒的适应性免疫应答。

IF 3.9 2区 化学 Q2 CHEMISTRY, APPLIED Molecular Diversity Pub Date : 2024-12-18 DOI:10.1007/s11030-024-11082-6
Mohammed Alissa, Abdullah Alghamdi, Suad A Alghamdi, Muhammad Suleman
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引用次数: 0

摘要

Junin病毒引起阿根廷出血热,导致严重的并发症,如高烧、不适、肌肉疼痛和出血性疾病,包括皮肤和粘膜出血。神经系统问题,如精神错乱、癫痫发作和昏迷也可能发生。如果得不到及时和有效的治疗,这种疾病可能是致命的,死亡率可高达30%。采取严肃措施对减轻这种疾病的传播至关重要。在目前情况下,疫苗接种是中和朱宁病毒最有效的选择。因此,为了设计针对Junin病毒的高免疫原性和非过敏性多表位亚单位疫苗,我们采用免疫信息学方法筛选糖蛋白、核蛋白和RDRP蛋白,以寻找潜在的免疫原性CTL(细胞毒性T淋巴细胞)、HTL(辅助性T淋巴细胞)和B (B淋巴细胞)细胞表位。然后,对预测的表位进行3D建模和验证。通过分子对接,证实构建的疫苗与人TLR3具有较强的结合亲和力,糖蛋白的结合亲和力为- 333 kcal/mol,核蛋白为- 297 kcal/mol, RDRP为- 308 kcal/mol,联合疫苗为- 305 kcal/mol。结合自由能分别为- 63.54 kcal/mol、- 64.16 kcal/mol、- 56.81 kcal/mol和- 51.52 kcal/mol。此外,通过分子动力学模拟证实了疫苗- tlr -3复合物的动态稳定性、剩余波动和紧密性。密码子适应指数(CAI)值和高GC含量证实了构建的疫苗在pET-28a(+)表达载体中的稳定表达。免疫模拟分析表明,注射已开发疫苗的加强剂量可导致IgG、IgM、白细胞介素和细胞因子水平显著增加,表明随着时间的推移抗原清除有效。总之,我们的研究为设计高效的Junin病毒疫苗提供了临床前证据,需要进一步的体外和体内实验。
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Immunoinformatic based designing of highly immunogenic multi-epitope subunit vaccines to stimulate an adaptive immune response against Junin virus.

The Junin virus causes Argentine hemorrhagic fever, leading to severe complications such as high fever, malaise, muscle pain, and bleeding disorders, including hemorrhages in the skin and mucous membranes. Neurological issues like confusion, seizures, and coma can also occur. Without prompt and effective treatment, the disease can be fatal, with mortality rates reaching up to 30%. Taking serious measures is essential to mitigate the spread of the disease. Vaccination is the most effective choice to neutralize the Junin virus in the current situation. Consequently, to design the highly immunogenic and non-allergenic multi-epitope subunit vaccine against the Junin virus, we employed the immunoinformatic approach to screen the glycoprotein, nucleoprotein, and RDRP protein for potential immunogenic CTL (Cytotoxic T Lymphocyte), HTL (Helper T Lymphocyte) and B (B Lymphocyte) cell epitopes. Afterward, the predicted epitopes were subjected to 3D modeling and validation. The strong binding affinity of the constructed vaccines with the human TLR3 was confirmed through molecular docking, with scores of - 333 kcal/mol for glycoprotein, - 297 kcal/mol for nucleoprotein, - 308 kcal/mol for RDRP, and - 305 kcal/mol for combined vaccines. Additionally, the binding free energies recorded were - 63.54 kcal/mol, - 64.16 kcal/mol, - 56.81 kcal/mol, and - 51.52 kcal/mol, respectively. Furthermore, the dynamic stability, residual fluctuation, and compactness of vaccine-TLR-3 complexes were confirmed by the molecular dynamic simulation. The codon adaptation index (CAI) values and high GC content confirmed the stable expression of constructed vaccines in the pET-28a ( +) expression vector. The immune simulation analysis demonstrated that administering booster doses of the developed vaccines resulted in a notable increase in IgG, IgM, interleukins, and cytokines levels, indicating effective antigen clearance over time. In conclusion, our study provides preclinical evidence for designing a highly effective Junin virus vaccine, necessitating further in-vitro and in-vivo experiments.

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来源期刊
Molecular Diversity
Molecular Diversity 化学-化学综合
CiteScore
7.30
自引率
7.90%
发文量
219
审稿时长
2.7 months
期刊介绍: Molecular Diversity is a new publication forum for the rapid publication of refereed papers dedicated to describing the development, application and theory of molecular diversity and combinatorial chemistry in basic and applied research and drug discovery. The journal publishes both short and full papers, perspectives, news and reviews dealing with all aspects of the generation of molecular diversity, application of diversity for screening against alternative targets of all types (biological, biophysical, technological), analysis of results obtained and their application in various scientific disciplines/approaches including: combinatorial chemistry and parallel synthesis; small molecule libraries; microwave synthesis; flow synthesis; fluorous synthesis; diversity oriented synthesis (DOS); nanoreactors; click chemistry; multiplex technologies; fragment- and ligand-based design; structure/function/SAR; computational chemistry and molecular design; chemoinformatics; screening techniques and screening interfaces; analytical and purification methods; robotics, automation and miniaturization; targeted libraries; display libraries; peptides and peptoids; proteins; oligonucleotides; carbohydrates; natural diversity; new methods of library formulation and deconvolution; directed evolution, origin of life and recombination; search techniques, landscapes, random chemistry and more;
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