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用于对抗温水水产养殖中感染的纳米疫苗:机遇与挑战

Nanovaccines to Combat Infections in Warm-Water Aquaculture: Opportunities and Challenges.

作者信息

Harshitha Mave, Nayak Ashwath, Disha Somanath, Akshath Uchangi Satyaprasad, Dubey Saurabh, Munang'andu Hetron Mweemba, Chakraborty Anirban, Karunasagar Indrani, Maiti Biswajit

机构信息

Nitte (Deemed to be University), Nitte University Centre for Science Education and Research, Department of Bio & Nano Technology, Paneer Campus, Deralakatte, Mangalore 575018, India.

Section of Experimental Biomedicine, Department of Production Animal Clinical Sciences, Faculty of Veterinary Medicine, Norwegian University of Life Sciences, P.O. Box 5003, N-1432 Ås, Norway.

出版信息

Vaccines (Basel). 2023 Oct 1;11(10):1555. doi: 10.3390/vaccines11101555.

Abstract

The application of nanotechnology in aquaculture for developing efficient vaccines has shown great potential in recent years. Nanovaccination, which involves encapsulating antigens of fish pathogens in various polymeric materials and nanoparticles, can afford protection to the antigens and a sustained release of the molecule. Oral administration of nanoparticles would be a convenient and cost-effective method for delivering vaccines in aquaculture while eliminating the need for stressful, labour-intensive injectables. The small size of nanoparticles allows them to overcome the degradative digestive enzymes and help deliver antigens to the target site of the fish more effectively. This targeted-delivery approach would help trigger cellular and humoral immune responses more efficiently, thereby enhancing the protective efficacy of vaccines. This is particularly relevant for combating diseases caused by pathogens like , a major fish pathogen responsible for significant morbidity and mortality in the aquaculture sector. While the use of nanoparticle-based vaccines in aquaculture has shown promise, concerns exist about the potential toxicity associated with certain types of nanoparticles. Some nanoparticles have been found to exhibit varying degrees of toxicity, and their safety profiles need to be thoroughly assessed before widespread application. The introduction of nanovaccines has opened new vistas for improving aquaculture healthcare, but must be evaluated for potential toxicity before aquaculture applications. Details of nanovaccines and their mode of action, with a focus on protecting fish from infections and outbreaks caused by the ubiquitous opportunistic pathogen , are reviewed here.

摘要

近年来,纳米技术在水产养殖中用于开发高效疫苗已显示出巨大潜力。纳米疫苗接种,即将鱼类病原体的抗原包裹在各种聚合材料和纳米颗粒中,能够保护抗原并实现分子的持续释放。口服纳米颗粒将是水产养殖中一种方便且经济高效的疫苗递送方法,同时无需使用压力大且劳动密集的注射方式。纳米颗粒的小尺寸使其能够克服消化降解酶,并更有效地将抗原递送至鱼类的靶位点。这种靶向递送方法将有助于更有效地触发细胞免疫和体液免疫反应,从而提高疫苗的保护效力。这对于对抗由诸如[病原体名称未给出]等病原体引起的疾病尤为重要,[病原体名称未给出]是水产养殖部门导致大量发病和死亡的主要鱼类病原体。虽然基于纳米颗粒的疫苗在水产养殖中的应用已显示出前景,但对于某些类型纳米颗粒的潜在毒性仍存在担忧。一些纳米颗粒已被发现表现出不同程度的毒性,在广泛应用之前需要对其安全性进行全面评估。纳米疫苗的引入为改善水产养殖健康开辟了新前景,但在水产养殖应用之前必须对其潜在毒性进行评估。本文综述了纳米疫苗的详细信息及其作用方式,重点是保护鱼类免受无处不在的机会性病原体[病原体名称未给出]引起的感染和疫情。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eead/10611256/a2670e51bf15/vaccines-11-01555-g001.jpg

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