Sun Bingbing, Xia Tian
Division of NanoMedicine, Department of Medicine; University of California, Los Angeles, California, 90095, United States.
Center for Environmental Implications of Nanotechnology (CEIN), California NanoSystems Institute (CNSI), University of California, Los Angeles, California, 90095, United States.
J Mater Chem B. 2016 Sep 7;4(33):5496-5509. doi: 10.1039/C6TB01131D. Epub 2016 Jul 15.
Vaccination is a biological process that administrates antigenic materials to stimulate an individual's immune system to develop immunity to a specific pathogen. It is the most effective tool to prevent illness and death from infectious diseases or diseases leading to cancers. Because many recombinant and synthetic antigens are poorly immunogenic, adjuvant is essentially added to vaccine formula that can potentiate the immune responses, offer better protection against pathogens and reduce the amount of antigens needed for protective immunity. To date, there are nearly 100 different types of adjuvants associated with about 400 vaccines that are either commercially available or under development. Among these adjuvants, many of them are particulates and nano-scale in nature. Nanoparticles represent a wide range of materials with novel physicochemical properties that exhibit immunostimulatory effects. However, the mechanistic understandings on how their physicochemical properties affect immunopotentiation remain elusive. In this article, we aim to review current development status of nanomaterial-based vaccine adjuvants, and further discuss their acting mechanisms, understanding of which will benefit the rational design of effective vaccine adjuvants with improved immunogenicity for prevention of infectious disease as well as therapeutic cancer treatment.
疫苗接种是一个生物学过程,即给予抗原物质以刺激个体免疫系统产生针对特定病原体的免疫力。它是预防传染病或导致癌症的疾病引起的疾病和死亡的最有效工具。由于许多重组抗原和合成抗原的免疫原性较差,因此基本上会在疫苗配方中添加佐剂,佐剂可以增强免疫反应,提供更好的针对病原体的保护,并减少产生保护性免疫所需的抗原量。迄今为止,有近100种不同类型的佐剂与约400种疫苗相关,这些疫苗要么已上市,要么正在研发中。在这些佐剂中,许多本质上是颗粒状且为纳米级的。纳米颗粒代表了具有新型物理化学性质且表现出免疫刺激作用的广泛材料。然而,关于它们的物理化学性质如何影响免疫增强作用的机制理解仍然难以捉摸。在本文中,我们旨在综述基于纳米材料的疫苗佐剂的当前发展状况,并进一步讨论它们的作用机制,对其的理解将有助于合理设计具有更高免疫原性的有效疫苗佐剂,以预防传染病以及用于癌症治疗。