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双靶向聚合物纳米粒子高效递送 DNA 疫苗并诱导对鲤鱼春病毒血症感染的强大预防免疫。

Dual-Targeting Polymer Nanoparticles Efficiently Deliver DNA Vaccine and Induce Robust Prophylactic Immunity against Spring Viremia of Carp Virus Infection.

机构信息

College of Animal Science and Technology, Northwest A&F University, Yangling, Shaanxi, People's Republic of China.

出版信息

Microbiol Spectr. 2022 Oct 26;10(5):e0308522. doi: 10.1128/spectrum.03085-22. Epub 2022 Sep 8.

Abstract

Spring viremia of carp virus (SVCV) is highly contagious and lethal to most cyprinid fish, causing serious economic losses to the carp aquaculture industry. Although DNA vaccines can generate long-term humoral and cellular immune responses, which provide protective immunity against SVCV, the major drawback of DNA vaccines is their low immunogenicity in clinical tests. Here, we construct a dual-targeted polymer DNA vaccine delivery platform (MCS-PCHG) by using mannosylated chitosan to encapsulate the poly(d,l-lactide--glycolide)-loaded DNA vaccine containing the heavy-chain C3 region (CH3) of common carp IgM and the antigenic domain (G131c). The developed nanovaccine delivery platform showed good biocompatibility and . With the modification of the mannose moiety and the modification of CH3, the constructed MCS-PCHG could efficiently activate the maturation of antigen-presenting cells. Moreover, we observe significantly high level of immune-related genes expression, serum antigen-specific IgM, SVCV-neutralizing antibody titers in fish vaccinated with MCS-PCHG. Next, the protective efficacy of MCS-PCHG was further evaluated by challenge test. The highest survival rate (ca. 84%) was observed in fish vaccinated with MCS-PCHG after challenging with SVCV. This study presents a novel design for smart, dual-targeted polymer nanoparticles, which are inherently biocompatible, promising for targeted vaccine delivery. Spring viremia of carp virus (SVCV) affects global cyprinid fish farming industry, with no available commercial vaccine. Herein, we developed a dual-targeting polymer nanovaccine (MCS-PCHG) by using mannose and common carp IgM heavy chain C3 region (CH3) as antigen presenting cell (APCs) recognition moiety, attaining the effective delivery of antigen. This dual-targeting polymer vaccine can efficiently activate the APCs, and further induce robust and durable adaptive immune response with good protection against SVCV infection. Our study provides valuable theoretical basis for developing efficient vaccine against infectious diseases in aquaculture.

摘要

鲤春病毒血症(SVCV)对大多数鲤科鱼类具有高度传染性和致命性,给鲤鱼养殖业造成严重的经济损失。尽管 DNA 疫苗可以产生长期的体液和细胞免疫反应,从而提供针对 SVCV 的保护免疫,但 DNA 疫苗的主要缺点是在临床测试中的免疫原性较低。在这里,我们使用甘露糖化壳聚糖构建了一种双靶向聚合物 DNA 疫苗传递平台(MCS-PCHG),该平台包封了载有鲤鱼 IgM 重链 C3 区(CH3)和抗原域(G131c)的聚(DL-丙交酯-共-乙交酯)负载的 DNA 疫苗。所开发的纳米疫苗传递平台显示出良好的生物相容性和。通过甘露糖部分的修饰和 CH3 的修饰,构建的 MCS-PCHG 可以有效地激活抗原呈递细胞的成熟。此外,我们观察到用 MCS-PCHG 接种的鱼的免疫相关基因表达水平、血清抗原特异性 IgM 和 SVCV 中和抗体滴度显著升高。接下来,通过攻毒试验进一步评估了 MCS-PCHG 的保护效力。在 SVCV 攻毒后,用 MCS-PCHG 接种的鱼的存活率最高(约 84%)。这项研究提出了一种新的智能双靶向聚合物纳米粒子设计,该设计具有固有生物相容性,有望用于靶向疫苗传递。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43d5/9603200/929df4c07486/spectrum.03085-22-f001.jpg

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