Polylactic-Co-glycolic Acid Polymer-Based Nano-Encapsulation Using Recombinant Maltoporin of Aeromonas hydrophila as Potential Vaccine Candidate.

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Biotechnology Pub Date : 2025-03-01 Epub Date: 2024-03-21 DOI:10.1007/s12033-024-01117-6
Mave Harshitha, Ruveena D'souza, Somanath Disha, Uchangi Satyaprasad Akshath, Saurabh Dubey, Hetron Mweemba Munang'andu, Anirban Chakraborty, Indrani Karunasagar, Biswajit Maiti
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Abstract

Aquaculture production has been incurring economic losses due to infectious diseases by opportunistic pathogens like Aeromonas hydrophila, a bacterial agent that commonly affects warm water aquacultured fish. Developing an effective vaccine with an appropriate delivery system can elicit an immune response that would be a useful disease management strategy through prevention. The most practical method of administration would be the oral delivery of vaccine developed through nano-biotechnology. In this study, the gene encoding an outer membrane protein, maltoporin, of A. hydrophila, was identified, sequenced, and studied using bioinformatics tools to examine its potential as a vaccine candidate. Using a double emulsion method, the molecule was cloned, over-expressed, and encapsulated in a biodegradable polymer polylactic-co-glycolic acid (PLGA). The immunogenicity of maltoporin was identified through in silico analysis and thus taken up for nanovaccine preparation. The encapsulation efficiency of maltoporin was 63%, with an in vitro release of 55% protein in 48 h. The particle size and morphology of the encapsulated protein exhibited properties that could induce stability and function as an effective carrier system to deliver the antigen to the site and trigger immune response. Results show promise that the PLGA-mediated delivery system could be a potential carrier in developing a fish vaccine via oral administration. They provide insight for developing nanovaccine, since sustained in vitro release and biocompatibility were observed. There is further scope to study the immune response and examine the protective immunity induced by the nanoparticle-encapsulated maltoporin by oral delivery to fish.

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基于聚乳酸-共聚乙醇酸聚合物的纳米封装技术,利用重组嗜水气单胞菌的马尔托托尔蛋白作为潜在候选疫苗。
水产养殖生产因机会性病原体(如嗜水气单胞菌)引起的传染性疾病而蒙受经济损失,嗜水气单胞菌是一种常见于温水养殖鱼类的细菌病原体。开发一种具有适当给药系统的有效疫苗可引起免疫反应,通过预防成为一种有用的疾病管理策略。最实用的给药方法是通过纳米生物技术开发的口服疫苗。在这项研究中,对嗜水蝇的外膜蛋白--maltoporin--的编码基因进行了鉴定、测序,并利用生物信息学工具对其进行了研究,以考察其作为候选疫苗的潜力。利用双乳液法克隆、过度表达了该分子,并将其封装在生物可降解聚合物聚乳酸-共-乙醇酸(PLGA)中。通过硅学分析确定了 maltoporin 的免疫原性,并将其用于纳米疫苗的制备。Maltoporin 的封装效率为 63%,48 小时内体外释放 55% 的蛋白质。封装蛋白质的粒度和形态显示了可诱导稳定性的特性,并可作为有效的载体系统将抗原递送到部位并触发免疫反应。研究结果表明,PLGA 介导的递送系统有望成为开发口服鱼类疫苗的潜在载体。由于观察到了持续的体外释放和生物相容性,这些结果为开发纳米疫苗提供了启示。还可以进一步研究鱼类的免疫反应,并考察纳米颗粒封装的 maltoporin 通过口服给鱼诱导的保护性免疫。
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来源期刊
Molecular Biotechnology
Molecular Biotechnology 医学-生化与分子生物学
CiteScore
4.10
自引率
3.80%
发文量
165
审稿时长
6 months
期刊介绍: Molecular Biotechnology publishes original research papers on the application of molecular biology to both basic and applied research in the field of biotechnology. Particular areas of interest include the following: stability and expression of cloned gene products, cell transformation, gene cloning systems and the production of recombinant proteins, protein purification and analysis, transgenic species, developmental biology, mutation analysis, the applications of DNA fingerprinting, RNA interference, and PCR technology, microarray technology, proteomics, mass spectrometry, bioinformatics, plant molecular biology, microbial genetics, gene probes and the diagnosis of disease, pharmaceutical and health care products, therapeutic agents, vaccines, gene targeting, gene therapy, stem cell technology and tissue engineering, antisense technology, protein engineering and enzyme technology, monoclonal antibodies, glycobiology and glycomics, and agricultural biotechnology.
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