College of Animal Science and Technology, Northwest A&F University, Xinong Road 22nd, Yangling, Shaanxi, 712100, China.
Guangxi Key Laboratory of Aquatic Biotechnology and Modern Ecological Aquaculture, Guangxi Engineering Research Center for Fishery Major Diseases Control and Efficient Healthy Breeding Industrial Technology (GERCFT), Guangxi Academy of Sciences, Nanning, 530007, China.
Virology. 2023 Mar;580:41-49. doi: 10.1016/j.virol.2023.01.014. Epub 2023 Jan 30.
An infectious disease emerged in recent years, Tilapia Lake Virus Disease (TiLVD), has severely restricted the development of global tilapia industry. Vaccination has proved potential strategy to prevent its causative agent Tilapia Lake Virus (TiLV) infectious. However, the response intensity of subunit vaccine is limited by its low immunogenicity, thus inclusion of adjuvants is required. Thus, we prepared a biomimetic nano-system (Cs-S2@M-M) with a particle size of ∼100 nm and an encapsulation efficiency of about 79.15% based on erythrocyte membrane. The immune response was detected after intramuscular injection to assess the effectiveness of the vaccine. The biomimetic system significantly up-regulates the expression of immune genes, enhances the activity of non-specific immune-related enzymes (P < 0.05) and improved relative percentage survival by 17.4%-26.1% in TiLV challenge. The biomimetic nano-system based on erythrocyte membrane induced significant immune response in tilapia and enhanced protection against TiLV, promising as a model for fish vaccines.
近年来出现了一种传染病,即罗非鱼湖病毒病(TiLVD),它严重限制了全球罗非鱼产业的发展。疫苗接种已被证明是预防其病原体罗非鱼湖病毒(TiLV)感染的潜在策略。然而,亚单位疫苗的反应强度受到其低免疫原性的限制,因此需要添加佐剂。因此,我们基于红细胞膜制备了一种粒径约为 100nm、包封率约为 79.15%的仿生纳米系统(Cs-S2@M-M)。通过肌肉注射检测免疫反应,以评估疫苗的有效性。仿生系统显著上调了免疫基因的表达,增强了非特异性免疫相关酶的活性(P<0.05),并在 TiLV 攻毒后将相对存活率提高了 17.4%-26.1%。基于红细胞膜的仿生纳米系统在罗非鱼中诱导了显著的免疫反应,并增强了对 TiLV 的保护作用,有望成为鱼类疫苗的模型。