靶向罗非鱼湖病毒4段的壳聚糖纳米颗粒浸渍疫苗的研制及效果研究。

IF 2.2 3区 农林科学 Q2 FISHERIES
Chanasorn Thanapasuk, Puntanat Tattiyapong, Jidapa Yamkasem, Sirikorn Kitiyodom, Piyathip Setthawong, Tuchakorn Lertwanakarn, Win Surachetpong
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引用次数: 0

摘要

由罗非鱼湖病毒(TiLV)引起的罗非鱼湖病毒病(TiLVD)对全球罗非鱼养殖造成了重大损害。TiLV是一种负义单链RNA病毒,由10个基因组片段组成。迄今为止,尚未开发出针对TiLVD的商业疫苗,并且缺乏控制和预防TiLVD的有效战略。在这项研究中,我们在实验室和现场条件下开发并测试了一种基于壳聚糖纳米颗粒的浸入式重组蛋白靶向TiLV的第4片段(S4)。将TiLV S4的开放阅读框克隆到pET28a(+)中,用大肠杆菌BL21(DE3)表达。nanoTiLV-S4 (CNS4)疫苗的大小为284±9.2 nm,比纳米包封前疫苗的2268±41.8 nm小。透射电镜显示,纳米os4颗粒呈圆形,外观均匀,zeta电位为17.7±0.7 mV。进一步分析表明,纳米os4抗原在鱼鳃和肠上沉积,并在浸泡30分钟内被上皮细胞吸收。在使用同居攻击模型的实验室感染下,CNS4疫苗的相对存活率(RPS)为25%。在野外条件下,与未接种组相比,该疫苗的RPS为31.88%。总之,我们的研究表明,新的纳米TiLV- s4疫苗可以被鱼类上皮吸收,并降低TiLV引起的死亡率。然而,需要进一步优化和田间试验,以提高CNS4疫苗的效力,并在各种农场条件下进行测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and Efficacy of a Chitosan Nanoparticle-Based Immersion Vaccine Targeting Segment 4 of Tilapia Lake Virus

Tilapia lake virus disease (TiLVD), which is caused by tilapia lake virus (TiLV), has resulted in significant damage to global tilapia farming. TiLV is a negative-sense single-strand RNA virus consisting of 10 genome segments. To date, no commercial vaccine against TiLVD has been developed, and effective strategies to control and prevent TiLVD are lacking. In this study, we developed and tested a chitosan nanoparticle-based immersion recombinant protein targeting segment 4 (S4) of TiLV under both laboratory and field conditions. The open reading frame of S4 of TiLV was cloned into pET28a (+) and expressed by Escherichia coli BL21(DE3). The size of the nanoTiLV-S4 (CNS4) vaccine was 284 ± 9.2 nm, which is smaller than the pre-nanoencapsulation vaccine size of 2268 ± 41.8 nm. Transmission electron microscopy revealed that the nanoS4 particles had a round shape, uniform appearance and positive zeta potential of 17.7 ± 0.7 mV. Further analysis showed that the nanoS4 antigen was deposited on the fish gills and intestines and taken up into the epithelial cells within 30 min of immersion. Under laboratory infection using a cohabitation challenge model, the CNS4 vaccine demonstrated a relative percent survival (RPS) of 25%. In field conditions, the vaccine showed an RPS of 31.88% compared to the unvaccinated group. Overall, our study demonstrates that the new nanoTiLV-S4 vaccine can be absorbed by the fish epithelium and reduces mortality caused by TiLV. However, further optimisation and field trials are necessary to improve the efficacy of the CNS4 vaccine and to test it under various farm conditions.

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来源期刊
Journal of fish diseases
Journal of fish diseases 农林科学-海洋与淡水生物学
CiteScore
4.60
自引率
12.00%
发文量
170
审稿时长
6 months
期刊介绍: Journal of Fish Diseases enjoys an international reputation as the medium for the exchange of information on original research into all aspects of disease in both wild and cultured fish and shellfish. Areas of interest regularly covered by the journal include: -host-pathogen relationships- studies of fish pathogens- pathophysiology- diagnostic methods- therapy- epidemiology- descriptions of new diseases
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