South China Advanced Institute for Soft Matter Science and Technology, School of Molecular Science and Engineering, South China University of Technology, Guangzhou, China.
State Key Laboratory of Luminescent Materials and Devices & Guangdong Provincial Key Laboratory of Functional and Intelligent Hybrid Materials and Devices, South China University of Technology, Guangzhou, China.
Front Immunol. 2022 Jan 19;12:804416. doi: 10.3389/fimmu.2021.804416. eCollection 2021.
Intermittent outbreaks of global pandemic disease have spurred new sensors and medicines development for the prevention of disease spread. This perspective specifically covers recent advances, challenges, and future directions in virus-mimetic polymeric nanostructures and their application in biological medicines with a special emphasis on subunit vaccine development. With tailorable compositions and properties, polymers facilitate the ingenious design of various polymeric nanostructures. As one type of polymeric nanostructures, virus-mimetic polymeric nanostructures have been developed as an attractive platform for enhanced immune responses, since they combine the merits of polymer nanocores with the biomimetic characteristic of virus which displays multivalent epitopes on their surfaces. This perspective also provides an applicative approach to rationally design virus-mimetic polymeric platforms based on nanostructures that are self-assembled by using polymers as templates and the antigens and metal oxide clusters loaded on their surface to mimic viruses in size and surface antigenicity. Sub-200 nm virus-mimetic polymeric nanostructures are in a relatively lower level of endotoxins and can promote the antigens to elicit potent humoral and cellular immune responses against pathogenic bacteria. The promising development of virus-mimetic polymeric nanostructures will continue to protect human health from common pathogens and emerging infectious threats.
间歇性的全球大流行病爆发促使人们开发新的传感器和药物来预防疾病传播。本观点特别涵盖了病毒模拟聚合物纳米结构的最新进展、挑战和未来方向,及其在生物医学中的应用,特别强调了亚单位疫苗的开发。由于聚合物具有可定制的组成和性质,因此有利于设计各种聚合物纳米结构。作为聚合物纳米结构的一种类型,病毒模拟聚合物纳米结构已被开发为增强免疫反应的有吸引力的平台,因为它们将聚合物纳米核的优点与病毒的仿生特性结合在一起,病毒在其表面展示多价表位。本观点还提供了一种实用的方法,可基于使用聚合物作为模板自组装的纳米结构,合理设计病毒模拟聚合物平台,并在其表面负载抗原和金属氧化物簇,以模拟病毒的大小和表面抗原性。亚 200nm 的病毒模拟聚合物纳米结构具有相对较低水平的内毒素,可促进抗原引发针对病原菌的有效体液和细胞免疫反应。病毒模拟聚合物纳米结构的有前途的发展将继续保护人类健康免受常见病原体和新发传染病的威胁。