Preparation of viromimetic rod-like nanoparticle vaccines (RLNVax) and study of their humoral immune activation efficacy†

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Zichao Huang, Zhenyi Zhu, Liping Liu, Wantong Song and Xuesi Chen
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Abstract

Virus-like nanoparticle vaccines can efficiently activate the humoral immune response by cross-linking B cell receptors with their surface multivalent antigen arrays. This structurally dependent mechanism makes it crucial to regulate and optimize structural parameters to enhance the efficacy of nanoparticle vaccines. In this study, we prepared nanoparticle vaccines with different aspect ratios by chemically modifying antigen proteins onto the surfaces of poly(amino acid) nanoparticles of various shapes (spherical, ellipsoidal, and rod-like). This allowed us to investigate the impact of structural anisotropy on the humoral immune activation efficacy of nanoparticle vaccines. Furthermore, the end-group molecules of poly(amino acid) materials possess aggregation-induced emission (AIE) properties, which facilitate monitoring the dynamics of nano-assemblies within the body. Results showed that rod-like nanoparticle vaccines (RLNVax) with a higher aspect ratio (AR = 5) exhibited greater lymph node draining efficiency and could elicit more effective B cell activation compared to conventional isotropic spherical nanoparticle vaccines. In a murine subcutaneous immunization model using ovalbumin (OVA) as a model antigen, RLNVax elicited antigen-specific antibody titers that were about 64 times and 4.6 times higher than those induced by free antigen proteins and spherical nanoparticle vaccines, respectively. Additionally, when combined with an aluminum adjuvant, antibody titers elicited by RLNVax were further enhanced by 4-fold. These findings indicate that the anisotropic rod-like structure is advantageous for improving the humoral immune activation efficacy of nanoparticle vaccines, providing significant insights for the design and optimization of next-generation nanoparticle vaccines.

Abstract Image

Abstract Image

仿病毒杆状纳米粒子疫苗(RLNVax)的制备及其体液免疫激活功效研究。
病毒样纳米粒子疫苗可通过交联 B 细胞受体与其表面多价抗原阵列,有效激活体液免疫反应。这种结构依赖性机制使得调节和优化结构参数对提高纳米颗粒疫苗的功效至关重要。在本研究中,我们通过化学修饰不同形状(球形、椭圆形和棒状)的聚氨基酸纳米粒子表面的抗原蛋白,制备了不同长径比的纳米粒子疫苗。这使我们得以研究结构各向异性对纳米颗粒疫苗体液免疫激活功效的影响。此外,聚(氨基酸)材料的末端基团分子具有聚集诱导发射(AIE)特性,这有助于监测体内纳米装配的动态。研究结果表明,与传统的各向同性球形纳米粒子疫苗相比,长径比(AR = 5)更高的杆状纳米粒子疫苗(RLNVax)具有更高的淋巴结引流效率,能更有效地诱导 B 细胞活化。在以卵清蛋白(OVA)为模型抗原的小鼠皮下免疫模型中,RLNVax 诱导的抗原特异性抗体滴度分别是游离抗原蛋白和球形纳米颗粒疫苗的 64 倍和 4.6 倍。此外,当与铝佐剂结合使用时,RLNVax 诱导的抗体滴度进一步提高了 4 倍。这些研究结果表明,各向异性的杆状结构有利于提高纳米颗粒疫苗的体液免疫激活功效,为下一代纳米颗粒疫苗的设计和优化提供了重要启示。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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