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利用层层组装技术设计生物材料疫苗,用于转化应用中的免疫调节。

Harnessing the layer-by-layer assembly technique to design biomaterials vaccines for immune modulation in translational applications.

机构信息

Department of Material Processing and Controlling, School of Mechanical Engineering & Automation, Beihang University, China.

出版信息

Biomater Sci. 2019 Feb 26;7(3):715-732. doi: 10.1039/c8bm01219a.

Abstract

The existence of challenging diseases such as cancers, HIV and Zika requires developing new vaccines that can generate tunable and robust immune responses against the diseases. Biomaterials-based techniques have been broadly explored for designing vaccines that can produce controllable and potent immunity. Among the existing biomaterials-based strategies, the layer-by-layer (LbL) assembly technique is remarkably attractive in vaccine design due to its unique features such as programmed and versatile cargo loading, cargo protection, co-delivery, juxtaposing of immune signals, etc. In this work, we reviewed the existing LbL-based vaccine design techniques for translational applications. Specifically, we discussed nanovaccines constructed by coating polyelectrolyte multilayers (PEMs) on nanoparticles, microcapsule vaccines assembled from PEMs, polyplex/complex vaccines condensed from charged materials and microneedle vaccines deposited with PEMs, highlighting the employment of these techniques to promote immunity against diseases ranging from cancers to infectious and autoimmune diseases (i.e., HIV, influenza, multiple sclerosis, etc.). Additionally, the review specifically emphasized using LbL-based vaccine technologies for tuning the cellular and molecular pathways, demonstrating the unique advantages presented by these vaccination strategies. These studies showed the versatility and potency of using LbL-based techniques for designing the next generation of biomaterials vaccines for translational purposes.

摘要

存在着一些具有挑战性的疾病,如癌症、艾滋病病毒和寨卡病毒,这就需要开发新的疫苗,以产生针对这些疾病的可调节和强大的免疫反应。基于生物材料的技术已被广泛探索用于设计疫苗,以产生可控和有效的免疫。在现有的基于生物材料的策略中,层层(LbL)组装技术在疫苗设计中具有独特的优势,如可编程和多功能的载药、载药保护、共递送、免疫信号并置等。在这项工作中,我们综述了现有的基于 LbL 的疫苗设计技术在转化应用中的研究进展。具体来说,我们讨论了通过在纳米粒子上涂覆聚电解质多层(PEM)来构建纳米疫苗、由 PEM 组装的微胶囊疫苗、由带电材料凝聚而成的聚合物/复合物疫苗以及涂覆 PEM 的微针疫苗,强调了这些技术在促进针对从癌症到传染病和自身免疫性疾病(如艾滋病病毒、流感、多发性硬化症等)的免疫中的应用。此外,本综述特别强调了使用基于 LbL 的疫苗技术来调节细胞和分子途径,展示了这些疫苗策略所具有的独特优势。这些研究表明,基于 LbL 的技术在设计用于转化目的的下一代生物材料疫苗方面具有多功能性和高效性。

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